Harmonised techniqueNon-exclusive mapping

Voltammetry

Cyclic, linear-sweep, differential-pulse, square-wave and stripping voltammetry.

441primary papers
1,693mapped measurements
6,714linked results
865raw method labels
The harmonised label does not replace the method

Every source method stays verbatim. Subtypes retain distinctions such as ATR versus transmission IR, powder versus single-crystal diffraction, and two- versus four-contact transport.

Measurement-family coverage

The same technique may serve transport, electrochemistry, sensing or another scientific purpose.

Mapped measurements

Filter source method wording, sample context and scientific purpose.

1,693 measurements

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · A conductive metal-organic framework-modified electrode for sensitive electrochemiluminescent detection of cardiac Troponin I

SPCE/Cu3(HHTP)2 · Electrode · SPCE/Cu3(HHTP)2 redox behaviour in PBS, potential window -0.7 to +1.3 V vs Ag/AgCl, 50 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in ferricyanide/ferrocyanide redox system

2026 · A conductive metal-organic framework-modified electrode for sensitive electrochemiluminescent detection of cardiac Troponin I

SPCE/Cu3(HHTP)2/Ab/BSA immunosensor · Electrode · 5.0 mM K3[Fe(CN)6] in PBS, scan rate 50 mV/s, comparing SPCE, SPCE/Cu3(HHTP)2, SPCE/Cu3(HHTP)2/Ab, and SPCE/Cu3(HHTP)2/Ab/BSA.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with [Ru(bpy)3]2+

2026 · A conductive metal-organic framework-modified electrode for sensitive electrochemiluminescent detection of cardiac Troponin I

SPCE/Cu3(HHTP)2 · Electrode · PBS containing 100 uM [Ru(bpy)3]2+; SPCE/Cu3(HHTP)2 compared with unmodified SPCE.

Electrochemistry ApplicationCyclic voltammetry

CV and ECL control measurements with HHTP film

2026 · A conductive metal-organic framework-modified electrode for sensitive electrochemiluminescent detection of cardiac Troponin I

SPCE/HHTP ligand film · Electrode · SPCE/HHTP with and without 100 uM [Ru(bpy)3]2+; CV and ECL responses shown in SI Figure S1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries

CH composite working electrode · Electrode · 0.01-3.0 V vs Li/Li+ at 0.1 mV s^-1; first three cycles.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries

CNH composite working electrode · Electrode · 0.01-3.0 V vs Li/Li+ at 0.1 mV s^-1; first three cycles.

Electrochemistry ApplicationCyclic voltammetry

CV at various scan rates and pseudocapacitive analysis

2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries

CH composite working electrode · Electrode · Scan rates 0.1, 0.2, 0.4, 0.8, 1 and 2 mV s^-1; CH CV curves in SI Fig. S12; b-values and contributions in Fig. 7.

Electrochemistry ApplicationCyclic voltammetry

CV at various scan rates and pseudocapacitive analysis

2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries

CNH composite working electrode · Electrode · Scan rates 0.1, 0.2, 0.4, 0.8, 1 and 2 mV s^-1; b-values and capacitive/diffusion contribution ratios.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry at various scan rates

2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries

CH composite working electrode · Electrode · CH CV curves at 0.1, 0.2, 0.4, 0.8, 1 and 2 mV s^-1 in SI Fig. S12.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · 0.1 M KCl containing 5 mM [Fe(CN)6]3-/4- redox probe; anodic peak current and EASA.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/GCE · Electrode · 0.1 M KCl containing 5 mM [Fe(CN)6]3-/4- redox probe; anodic peak current and EASA.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

COF/GCE · Electrode · 0.1 M KCl containing 5 mM [Fe(CN)6]3-/4- redox probe; anodic peak current and EASA.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

bare GCE · Electrode · 0.1 M KCl containing 5 mM [Fe(CN)6]3-/4- redox probe; anodic peak current and EASA.

Sensing ApplicationStripping

DPASV

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · 50 ug/L Cd2+ and Pb2+ in 0.1 M ABS, pH 5.0.

Sensing ApplicationStripping

DPASV

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/GCE · Electrode · 50 ug/L Cd2+ and Pb2+ in 0.1 M ABS, pH 5.0.

Sensing ApplicationStripping

DPASV

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

COF/GCE · Electrode · 50 ug/L Cd2+ and Pb2+ in 0.1 M ABS, pH 5.0.

Sensing ApplicationStripping

DPASV

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

bare GCE · Electrode · 50 ug/L Cd2+ and Pb2+ in 0.1 M acetate buffer (ABS), pH 5.0.

Sensing ApplicationStripping

DPASV calibration

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · Individual quantitative analysis in mixtures by varying one target while holding the other constant.

Sensing ApplicationStripping

DPASV standard-spiking recovery

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · Cd2+ and Pb2+ in tap water, lake water, milk and honey; acetate solution pH 5; n=3.

Sensing ApplicationStripping

DPASV parameter optimisation

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · Optimised Bi-HHTP:COF ratio, electrolyte pH, accumulation potential/time and suspension amount for Cd2+/Pb2+ sensing.

Sensing ApplicationStripping

DPASV calibration

2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification

Bi-HHTP/COF/GCE · Electrode · Simultaneous detection of Cd2+ and Pb2+ at Bi-HHTP/COF/GCE under optimised conditions.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · 30 nM IMI in 0.1 M PBS at pH 7.0; comparison of bare GCE, HHTQ/GCE, and Co-HHTQ-MOF/GCE.

Electrochemistry ApplicationCyclic voltammetry

Deposition-volume optimisation by CV

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · Optimisation of Co-HHTQ-MOF suspension volume deposited on electrode surface.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · Comparison of Fe-HHTQ-MOF/GCE, Ni-HHTQ-MOF/GCE, and Co-HHTQ-MOF/GCE toward 30 nM IMI in 0.1 M PBS pH 7.0.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry pH optimisation

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · 30 nM IMI at Co-HHTQ-MOF/GCE over pH 5.0-9.0 in 0.1 M PBS.

Sensing ApplicationCyclic voltammetry

Repeatability by consecutive CV measurements

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · 50 consecutive measurements of current response to 30 nM IMI at Co-HHTQ-MOF/GCE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate study

2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection

Co-HHTQ-MOF/GCE · Electrode · 30 nM IMI in 0.1 M PBS at pH 7.0; scan rates from 20 to 140 mV/s.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

OER LSV/polarisation, Tafel, EIS, CV-derived Cdl/ECSA and chronopotentiometry

2026 · Electronically Conductive Metal−Organic Framework With Photoelectric and Photothermal Effect as a Stable Cathode for High-Temperature Photo-Assisted Zn/Sn-Air Battery

Ni2DDA OER carbon-paper electrode · Electrode · 1 M KOH, simulated solar irradiation or dark, three-electrode setup, 10 mV s-1 with IR compensation; EIS 0.1-1e5 Hz.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry-derived double-layer capacitance

2026 · Intrinsically Conductive π-d Conjugated Layers with Co–N4 Active Sites for Efficient Nitrate Electrocatalysis and Zinc-Nitrate Batteries

Co3(HITP)2 drop-cast carbon paper electrode · Electrode · Current density plotted as a function of scan rate in a nonfaradaic region from CV measurements in 1 M KOH.

Electrochemistry ApplicationLinear sweep

LSV and chronoamperometry under varied KOH/KCl electrolyte composition

2026 · Intrinsically Conductive π-d Conjugated Layers with Co–N4 Active Sites for Efficient Nitrate Electrocatalysis and Zinc-Nitrate Batteries

Co3(HITP)2 drop-cast carbon paper electrode · Electrode · 1 M KNO3 with 0, 0.1 or 1 M KOH; KOH versus KCl controls; 0.1 M and 1 M KOH yield/FE compared across potentials; SI includes 1, 2, 3 and 5 M KOH at -0.5 V vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV)

2026 · Intrinsically Conductive π-d Conjugated Layers with Co–N4 Active Sites for Efficient Nitrate Electrocatalysis and Zinc-Nitrate Batteries

Co3(HITP)2 drop-cast carbon paper electrode · Electrode · H-type cell, Ag/AgCl reference, Pt mesh counter, Nafion 115 membrane; 1 M KOH with or without 1 M KNO3; about 10 mL electrolyte per chamber.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2026 · Microenvironment modulation in heterometallic MOFs for tailoring electron/proton transport and hydrophilicity toward photocatalytic hydrogen production

Ni-Ca coated electrochemical electrode · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2026 · Microenvironment modulation in heterometallic MOFs for tailoring electron/proton transport and hydrophilicity toward photocatalytic hydrogen production

Ni-Sr coated electrochemical electrode · Electrode

Electrochemistry ApplicationLinear sweep

H-type cell CO2 electroreduction, LSV and constant-potential chronoamperometry with GC product analysis

2026 · Microfluidic Printing-Induced Dynamic Splitting of Conductive MOF to Expose High-Density Active Sites for Boosted CO2 Electroreduction

MF-cMOFQx/ty H-cell electrode inks · Electrode · Catalyst ink on 5 mm glassy carbon electrode; CO2-saturated KHCO3-KCl electrolyte; Ag/AgCl reference, Pt counter, Nafion 117 separator; potentials -1.1 to -1.6 V vs RHE; GC detected CH4, C2H4, and H2.

Electrochemistry ApplicationCyclic voltammetry

ASC CV and GCD

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Zn-doped Ni/Fe-MOF//AC ASC device · Electrode · Two-electrode ASC in 2 M KOH; CV 1-100 mV s-1; GCD 1-10 A g-1; 0.0-1.8 V operating window

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Fe-MOF on glassy carbon electrode · Electrode · Three-electrode 2 M KOH; CV 0.0-0.7 V at 1-50 mV s-1 (figure caption 5-100 mV s-1); GCD 0.0-0.6 V at 1-10 A g-1; EIS 0.1 to 10^5 Hz

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Ni/Fe-MOF on glassy carbon electrode · Electrode · Three-electrode 2 M KOH; CV 0.0-0.7 V at 1-50 mV s-1 (figure caption 5-100 mV s-1); GCD 0.0-0.6 V at 1-10 A g-1; EIS 0.1 to 10^5 Hz

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Ni-MOF on glassy carbon electrode · Electrode · Three-electrode 2 M KOH; CV 0.0-0.7 V at 1-50 mV s-1 (figure caption 5-100 mV s-1); GCD 0.0-0.6 V at 1-10 A g-1; EIS 0.1 to 10^5 Hz

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Zn-doped Ni/Fe-MOF-derived material on glassy carbon electrode · Electrode · Three-electrode 2 M KOH; CV 0.0-0.7 V at 1-50 mV s-1 (figure caption 5-100 mV s-1); GCD 0.0-0.6 V at 1-10 A g-1; EIS 0.1 to 10^5 Hz

Electrochemistry ApplicationCyclic voltammetry

CV cycling comparison

2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage

Ni/Fe-MOF on glassy carbon electrode · Electrode · 5000 CV cycles at 50 mV s-1 in 2 M KOH

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in LIB

2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes

Cd2(TTFTB) MOF cathode · Electrode · HZ-Pro S12; 1.5-4.2 V vs Li+/Li; 10 mV s^-1; RT

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in LIB

2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes

TTF-hybrid-MOF cathode · Electrode · HZ-Pro S12; 1.5-4.2 V vs Li+/Li; 10 mV s^-1; RT

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in SIB

2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes

Cd2(TTFTB) MOF cathode · Electrode · HZ-Pro S12; 1.0-4.2 V vs Na+/Na; 10 mV s^-1; RT

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in SIB

2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes

TTF-hybrid-MOF cathode · Electrode · HZ-Pro S12; 1.0-4.2 V vs Na+/Na; 10 mV s^-1; RT

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2026 · Tunable Charge Transport Properties Through Precise π-Stacking Modulation in Isostructural Porous Molecular Conductors

NDI-py ligand control solid · Powder · Solid NDI-py in 0.1 M LiPF6/CH3CN at 100 mV s-1 under nitrogen flow.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2026 · Tunable Charge Transport Properties Through Precise π-Stacking Modulation in Isostructural Porous Molecular Conductors

PMC-3-Br solid-state electrochemical sample · Electrode · Standard three-electrode cell; glassy carbon working electrode; Pt counter and Ag quasi-reference; Fc calibrated; dry acetonitrile electrolytes; scan rate 100 mV s-1 under nitrogen.

Electrochemistry ApplicationCyclic voltammetry

Lithium-ion battery cyclic voltammetry

2025 · 2D Tetrathiafulvalene-Based Metal–Organic Framework Linked by Hydrogen Bonding for Boosting Long-Cycle Stability of Lithium-Ion Batteries

m-TTFTB-Co-MOF anode electrode in coin cell · Electrode · CR2025 two-electrode coin-cell LIB using m-TTFTB-Co-MOF as active anode; voltage window 0.01-3.0 V; CV scan rate 0.1 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode cyclic voltammetry redox test

2025 · 2D Tetrathiafulvalene-Based Metal–Organic Framework Linked by Hydrogen Bonding for Boosting Long-Cycle Stability of Lithium-Ion Batteries

m-TTFTB-Co-MOF DMF/Nafion/TBAPF6 redox-test dispersion · Unknown · Glassy carbon working electrode, platinum wire counter electrode, double-salt-bridge SCE; DMF/TBAPF6 electrolyte; N2 purged 15 min; scan rate 100 mV s^-1; 25 +/- 1 C.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate analysis

2025 · A Conductive Cu-Based Metal–Organic Framework Ribbon with High-Density Redox-Active Centers as Cathode for Stable High-Capacity Lithium-Ion Batteries

DDA-Cu LIB cathode, low loading · Electrode · CV at 0.2-1.0 mV s^-1 in excess electrolyte; b-value and capacitive contribution analysis

Electrochemistry ApplicationCyclic voltammetry

lean-electrolyte CV scan-rate analysis

2025 · A Conductive Cu-Based Metal–Organic Framework Ribbon with High-Density Redox-Active Centers as Cathode for Stable High-Capacity Lithium-Ion Batteries

DDA-Cu LIB cathode, low loading · Electrode · CV at 0.2-1.0 mV s^-1 in lean electrolyte; E/AM = 7.8 uL mg^-1

Sensing ApplicationSquare wave

SWV recovery in beer samples

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Treated beer samples were heated at 80 C for 2 h, ultrasonicated for 1 h, filtered through 0.22 um membrane, adjusted to pH 7.4, and spiked with T-2 toxin at 50, 5, 0.5 and 0.05 ng/mL.

Sensing ApplicationSquare wave

SWV recovery in treated beer samples

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Treated beer samples spiked with 50, 5, 0.5 and 0.05 ng/mL T-2 toxin after heating, ultrasonication, filtration and pH adjustment.

Sensing ApplicationSquare wave

SWV recovery in untreated beer samples

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Untreated beer samples spiked with 0, 0.05, 0.5, 5 and 50 ng/mL T-2 toxin to assess matrix effects.

Electrochemistry ApplicationCyclic voltammetry

CV and EIS

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

C-Ni1.5Co1.5(HITP)2/GCE · Electrode · MOF-modified GCEs measured in 5 mM [Fe(CN)6]4-/3- solution.

Sensing ApplicationSquare wave

Intermittent SWV stability

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Aptasensor incubated with 50 ng/mL T-2 toxin over 15 consecutive SWV cycles.

Sensing ApplicationSquare wave

SWV optimisation

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Optimisation of CP1 incubation temperature, Exo III concentration, HP1 concentration and Exo III incubation time using supporting Figs. S5-S6.

Electrochemistry ApplicationCyclic voltammetry

CV and EIS

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

Au-Thi-Au@C-Ni1.5Co1.5(HITP)2/GCE · Electrode · Bare GCE, C-Ni1.5Co1.5(HITP)2/GCE, and Au-Thi-Au@C-Ni1.5Co1.5(HITP)2/GCE measured using 5 mM [Fe(CN)6]4-/3- redox probe.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate dependence

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

Au-Thi-Au@C-Ni1.5Co1.5(HITP)2/GCE · Electrode · CV of Au-Thi-Au@C-Ni1.5Co1.5(HITP)2 modified electrode at 0.02-0.20 V/s.

Sensing ApplicationSquare wave

Repeatability SWV across seven electrode batches

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Seven independently fabricated electrodes measured for 50 ng/mL T-2 toxin; n = 3 error bars in Fig. 4F.

Sensing ApplicationSquare wave

SWV selectivity/interference

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · T-2 toxin at 50 ng/mL tested against ZEN, AFB1/FB1 label inconsistency, DON, HT-2, DAS and mixture; interferents at 500 ng/mL.

Electrochemistry ApplicationCyclic voltammetry

Stepwise CV and EIS

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · CV and EIS of bare GCE, DpAu/GCE, HP1/DpAu/GCE, BSA/HP1/DpAu/GCE, S1-S2/BSA/HP1/DpAu/GCE, ExoIII/S1-S2/BSA/HP1/DpAu/GCE and CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE in 5.0 mM [Fe(CN)6]4-/3- containing 0.1 M KCl.

Sensing ApplicationSquare wave

Long-term storage stability by SWV

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · Aptasensor incubated with 50 ng/mL T-2 toxin after refrigeration at 4 C for up to 10 days.

Electrochemistry ApplicationSquare wave

Square-wave voltammetry

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

C-Ni1.5Co1.5(HITP)2/GCE · Electrode · SWV curves of MOF-modified GCEs in 0.1 M HAc-NaAc solution (pH 5.5) containing thionine (1 mg/mL).

Sensing ApplicationSquare wave

SWV calibration for T-2 toxin

2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor

CP1 bioconjugate/ExoIII/S1-S2/BSA/HP1/DpAu/GCE aptasensor · Electrode · SWV response after incubation with T-2 toxin concentrations from 5e-7 ng/mL to 50 ng/mL; calibration plotted against log concentration.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge in R2032 coin cells

2025 · A Cu-based electronically conducting metal–organic framework with π–d conjugation for cathode and anode modification in aqueous zinc-ion batteries

DDA-Cu cathode electrode · Electrode · DDA-Cu cathode, zinc foil anode, 3.5 M Zn(CF3SO3)2 electrolyte; CV at 2 mV s-1 over 0.2-1.5 V vs Zn2+/Zn; GCD at 0.2-1 A g-1.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD cycling, EIS and rate testing of Zn@DDA-Cu||NVO full cells

2025 · A Cu-based electronically conducting metal–organic framework with π–d conjugation for cathode and anode modification in aqueous zinc-ion batteries

Zn@DDA-Cu composite anode · Electrode · NVO cathode, 2 M Zn(CF3SO3)2 electrolyte; compared with Zn||NVO; CV at 10 mV s-1 over 0.2-1.6 V; cycling at 3 A g-1.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis

2025 · A Cu-based electronically conducting metal–organic framework with π–d conjugation for cathode and anode modification in aqueous zinc-ion batteries

DDA-Cu cathode electrode · Electrode · Scan rates 1-4 mV s-1; b-value and capacitive/diffusion contribution analysis.

Electrochemistry ApplicationLinear sweep

EIS, Tafel linear polarisation, and LSV in symmetric cells

2025 · A Cu-based electronically conducting metal–organic framework with π–d conjugation for cathode and anode modification in aqueous zinc-ion batteries

Zn@DDA-Cu composite anode · Electrode · Zn||Zn and Zn@DDA-Cu||Zn@DDA-Cu symmetric cells; EIS after standing 2 h; linear polarisation in 2 M Zn(CF3SO3)2; LSV for HER.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and electrochemical impedance spectroscopy

2025 · A mixed-organic ligands Ru(bpy)32+@Zn mMOFs-NH2 nanoreactors integrated co-reaction accelerator and morphologic regulator for the electrochemiluminescence detection of ATP

Ru(bpy)3(2+)@Zn mMOFs-NH2-CP/ATP/AP/AuNPs/GCE · Electrode · 0.1 M KCl containing 5 mM [Fe(CN)6]3-/4-; ATP concentration 100 nM; assembly stages bare GCE, AuNPs/GCE, AP/AuNPs/GCE, ATP/AP/AuNPs/GCE, final MOF-probe electrode

Electrochemistry ApplicationLinear sweep

RRDE linear sweep voltammetry for 2e ORR

2025 · A novel 2D conductive MOF nanobelts for highly efficient electrosynthesis of hydrogen peroxide

Ni-PTC-25 RRDE catalyst electrode · Electrode · O2-saturated 0.1 M KOH; LSV 0.1-1.2 V vs RHE at 10 mV s-1.

Electrochemistry ApplicationLinear sweep

RRDE linear sweep voltammetry for 2e ORR

2025 · A novel 2D conductive MOF nanobelts for highly efficient electrosynthesis of hydrogen peroxide

Ni-PTC-60 RRDE catalyst electrode · Electrode · O2-saturated 0.1 M KOH; three-electrode RRDE; LSV 0.1-1.2 V vs RHE at 10 mV s-1; Pt ring at 1.5 V vs RHE for H2O2 detection.

Electrochemistry ApplicationLinear sweep

RRDE linear sweep voltammetry for 2e ORR

2025 · A novel 2D conductive MOF nanobelts for highly efficient electrosynthesis of hydrogen peroxide

XC72 carbon black RRDE control electrode · Electrode · O2-saturated 0.1 M KOH; carbon black comparison electrode.

Electrochemistry ApplicationCyclic voltammetry

CV cycling durability and post-test SEM/XRD

2025 · A novel 2D conductive MOF nanobelts for highly efficient electrosynthesis of hydrogen peroxide

Ni-PTC-60 RRDE catalyst electrode · Electrode · 10,000 CV cycles in 0.1 M KOH; SI states CV in 0.6-0.8 V_RHE for electrode stability.

Electrochemistry ApplicationCyclic voltammetry

background cyclic voltammetry on bare FTO

2025 · Beyond diffusion: ion and electron migration contribute to charge transport in redox-conducting metal-organic frameworks

bare FTO control electrode · Electrode · bare FTO with 36 mM [Co(bpy)3]3+ at 50 mV s-1 in DMF; 0.5 M LiClO4 supporting electrolyte

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of [Co(bpy)3]3+ on glassy carbon

2025 · Beyond diffusion: ion and electron migration contribute to charge transport in redox-conducting metal-organic frameworks

[Co(bpy)3]3+ on glassy carbon · Electrode · 3 mM [Co(bpy)3]3+ in 0.5 M LiClO4/DMF; 0.071 cm2 glassy carbon disk; 100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry without [Co(bpy)3]3+

2025 · Beyond diffusion: ion and electron migration contribute to charge transport in redox-conducting metal-organic frameworks

Zn(NDI)@FTO thin film · Thin Film · Zn(NDI)@FTO in 0.5 M LiClO4/DMF; scan rates 1 to 500 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Bimetal MOF nanosheets as efficient anode materials for lithium-ion batteries

CoxFe1-x-MOF powder/nanosheet series · Nanosheet · CV curves recorded between 0.01 and 3.0 V at 0.1 mV s-1 for Co-MOF, Fe-MOF, and Co1/2Fe1/2-MOF.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate CV kinetic analysis

2025 · Bimetal MOF nanosheets as efficient anode materials for lithium-ion batteries

CoxFe1-x-MOF powder/nanosheet series · Nanosheet · CVs at scan rates 0.2-1.0 mV s-1; b values from log i versus log v; capacitive/diffusion contributions from i = k1v + k2v1/2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Catalysis-Assisted Synthesis of Two-Dimensional Conductive Metal–Organic Framework Films with Controllable Orientation

electrochemical and Pt-only controls · Electrode · O2 reduction and HHTP oxidation in DMF/H2O pH 3.3 and DMF controls

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Catalytic Metal-Organic Framework-Functionalized Inverse-Opal Architectured Polymeric Separator for High-Performance Li-S Batteries

Li-S coin cell with ZIF-PIO separator · Electrode · LiSBs with sulfur-free and sulfur-loaded cathodes; 1.6-2.8 V vs Li/Li+.

Electrochemistry ApplicationCyclic voltammetry

Symmetric-cell CV for LiPS catalysis

2025 · Catalytic Metal-Organic Framework-Functionalized Inverse-Opal Architectured Polymeric Separator for High-Performance Li-S Batteries

ZIF-PIO-3 separator · Thin Film · Carbon paper/electrolyte/separator/electrolyte/carbon paper cell with Li2S4, Li2S6 or Li2S8; 0.5 mV s-1 from -1 to 1 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry scan-rate series for double-layer capacitance / ECSA

2025 · Comparing Ag-O coordinated AgMOF-5 and Ag-N coordinated Ag nanosphere catalytic polymers for real time monitoring of H2O2 level in cancer cells

AgMOF/GCE · Electrode · Current density versus scan rate for bare GCE, AgMOF/GCE and Ag nanosphere/GCE; double-layer capacitance used as ECSA proxy.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry H2O2 calibration

2025 · Comparing Ag-O coordinated AgMOF-5 and Ag-N coordinated Ag nanosphere catalytic polymers for real time monitoring of H2O2 level in cancer cells

Ag nanosphere/GCE · Electrode · Ag nanosphere/GCE CV calibration for H2O2 comparison.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry H2O2 calibration

2025 · Comparing Ag-O coordinated AgMOF-5 and Ag-N coordinated Ag nanosphere catalytic polymers for real time monitoring of H2O2 level in cancer cells

AgMOF/GCE · Electrode · AgMOF/GCE CV calibration in 0.1 M PBS using H2O2 diluted from 5 mM to 1 nM; scan rate 0.1 V/s; reduction around -0.65 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in H2O2/PBS

2025 · Comparing Ag-O coordinated AgMOF-5 and Ag-N coordinated Ag nanosphere catalytic polymers for real time monitoring of H2O2 level in cancer cells

AgMOF/GCE · Electrode · CV response for 5 mM H2O2 comparing bare GCE, AgMOF/GCE and Ag nanosphere/GCE.

Sensing ApplicationCyclic voltammetry

CV/EIS/amperometric reproducibility, stability, repeatability, reliability, selectivity and serum recovery tests

2025 · Comparing Ag-O coordinated AgMOF-5 and Ag-N coordinated Ag nanosphere catalytic polymers for real time monitoring of H2O2 level in cancer cells

AgMOF/GCE · Electrode · AgMOF/GCE evaluated with 5 mM H2O2, interferents (lactose, glucose, NaCl, ascorbic acid and sucrose), pH variation and 20-fold diluted human plasma/serum samples.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CHI660E)

2025 · Conductive Metal–Organic Frameworks Anchoring on V3O7·H2O Nanobelts Toward High-Capacity and Long-Life Zinc-Ion Batteries

VO@Cu-HHTP-2 composite cathode electrode · Electrode · Zn coin cells with Zn foil anode, glass fibre separator, 3 M Zn(CF3SO3)2 electrolyte; voltage window 0.2-1.6 V; CV at 0.1 or 0.2 mV s-1 in text/figure caption.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis

2025 · Conductive Metal–Organic Frameworks Anchoring on V3O7·H2O Nanobelts Toward High-Capacity and Long-Life Zinc-Ion Batteries

VO@Cu-HHTP-2 composite cathode electrode · Electrode · Scan rates from 0.2 to 1 mV s-1; power-law b-value fitting and capacitive/diffusion contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Construction of a portable and sensitive electrochemical immunosensor for the rapid detection of erythromycin based on semiconductive bimetallic MOF

CuxFe3-x(HHTP)2/AE modified gold electrode · Electrode · CV curves of bare AE, CuxFe3-x(HHTP)2/AE, Ab/CuxFe3-x(HHTP)2/AE, BSA/Ab/CuxFe3-x(HHTP)2/AE and ERY/BSA/Ab/CuxFe3-x(HHTP)2/AE in PBS with 5 mM [Fe(CN)6]3-/4-.

Electrochemistry ApplicationCyclic voltammetry

CV and EIS electrochemical workstation conditions

2025 · Construction of a portable and sensitive electrochemical immunosensor for the rapid detection of erythromycin based on semiconductive bimetallic MOF

CuxFe3-x(HHTP)2/AE modified gold electrode · Electrode · CHI760E electrochemical workstation; conventional three-electrode system in PBS (0.01 M, pH 7.4) with 5.0 mM [Fe(CN)6]3-/4-; CV -0.2 to 0.8 V at 50 mV s-1; EIS 0.01 Hz to 100 kHz with 5 mV AC amplitude; tests repeated at least thrice.

Electrical TransportLinear sweep

linear sweep voltammetry (LSV)

2025 · Construction of nanozyme based with mixed valence manganese oxide loaded on defective metal-organic frameworks for sensitive detection of biomarker procalcitonin

MdP nanoparticles · Powder · LSV curves of dPCN-224 and MdP; electrolyte 0.10 mol L-1 Na2SO4(aq), -0.50 to 2.0 V versus Ag/AgCl, scan rate 10 mV s-1.

Sensing ApplicationCyclic voltammetry

CV response versus Cu3(HBC)2 modification concentration

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 0.83 mM rutin on Cu3(HBC)2/SPEs prepared from 0, 0.25, 0.5, 1, and 2 mg/mL Cu3(HBC)2 dispersions.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · Cu3(HBC)2/SPE in 0.1 M PBS (pH 3.0), 0 to +1.0 V, scan rate 100 mV/s unless otherwise specified.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 0.83 mM rutin on bare SPE and Cu3(HBC)2/SPE in 0.1 M PBS (pH 3.0) at 100 mV/s.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · Rutin concentration series; DPV from +1.0 to 0 V in 0.1 M PBS (pH 3.0), 0.008 V step, 0.16 V pulse amplitude, 0.025 s pulse width.

Sensing ApplicationDifferential pulse

HUVEC culture-medium DPV and cell assays

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · HUVECs treated with 100 uM H2O2 for 1 h, then 100 uM rutin for 12 h; 10 uL culture medium measured by DPV on Cu3(HBC)2/SPE in PBS pH 3.0; CCK-8 and morphology/cell-count assays.

Sensing ApplicationDifferential pulse

DPV monitoring of rutin hydrolysis

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 6 mg rutin in 20 mL 99.5% methanol and 0.5 M HCl, heated at 80 C; aliquots at 0, 1, 3, and 6 h diluted in 0.1 M PBS pH 3.0.

Sensing ApplicationDifferential pulse

DPV interference/selectivity test

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · Rutin response in presence of 10-fold AA, Glu, Tyr, Trp, Qct, VB2 and 100-fold K+, Cl-, Na+, NO3-, Fe3+, Cu2+, SO4(2-) in 0.1 M PBS pH 3.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry pH dependence

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 0.83 mM rutin in 0.1 M PBS at pH 2.0, 3.0, 4.0, and 5.0.

Sensing ApplicationCyclic voltammetryDifferential pulse

CV/DPV response to quercetin metabolite

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 0.83 mM Qct CV; 20 uM rutin and 200 uM Qct DPV in 0.1 M PBS pH 3.0; Qct scan-rate data in SI Fig. S2.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry scan-rate dependence

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · 0.83 mM rutin on Cu3(HBC)2/SPE from 10 to 300 mV/s.

Sensing ApplicationDifferential pulse

DPV determination of rutin in medicinal tablets

2025 · Contorted hexabenzocoronene-based two-dimensional conductive metal-organic framework enabled electrochemical platform for monitoring of rutin in pharmaceuticals and biological samples

Cu3(HBC)2/SPE · Electrode · Ground commercial rutin tablets dissolved in ultrapure water, ultrasonicated, introduced into 0.1 M PBS pH 3.0, and measured by DPV in triplicate.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry bare-ITO control

2025 · Copper-Based Two-Dimensional Conductive Metal-Organic Framework Thin Films for Ultrasensitive Detection of Perfluoroalkyls in Drinking Water

Bare ITO channel/control electrode · Electrode · Bare ITO working electrode with and without 10 nM PFOA, Ag/AgCl reference and Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Copper-Based Two-Dimensional Conductive Metal-Organic Framework Thin Films for Ultrasensitive Detection of Perfluoroalkyls in Drinking Water

Cu-HHTP thin-film device exposed to PFOA · Electrode · Cu-HHTP film working electrode in PBS before and after 10 nM PFOA; leakless Ag/AgCl reference, Pt mesh counter electrode, 20 mV/s scan rate.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Development of an electrochemiluminescence aptasensor combining covalent-triazine framework emitter with exonuclease III-driven DNA walker for sensitive CEA detection

rHp/CuxMn3-x(HITP)2-MCH/ssDNA/CTF/AE · Electrode · CV curves at each fabrication step in 0.1 M PBS containing 5 mM [Fe(CN)6]3-/4- and 0.1 M KCl; SI S1.6 records -0.4 to 0.8 V vs Ag/AgCl at 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Discovery of Dual Ion-Electron Conductivity of Metal-Organic Frameworks via Machine Learning-Guided Experimentation

H2L linker in 0.1 M KOH for CV · Electrode · 0.1 M KOH; glassy carbon working electrode, Pt wire auxiliary electrode, Ag/AgCl reference; scan rate 100 mV s-1; potential window -0.8 to 0.8 V stated for electrochemical measurements.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Discovery of Dual Ion-Electron Conductivity of Metal-Organic Frameworks via Machine Learning-Guided Experimentation

MOF 1 glassy-carbon working electrode slurry · Electrode · 0.1 M KOH; three-electrode configuration; scan rate 100 mV s-1; potential window -0.8 to 0.8 V; working-electrode preparation in SI.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Discovery of Dual Ion-Electron Conductivity of Metal-Organic Frameworks via Machine Learning-Guided Experimentation

MOF 2 glassy-carbon working electrode slurry · Electrode · 0.1 M KOH; three-electrode configuration; scan rate 100 mV s-1; potential window -0.8 to 0.8 V; working-electrode preparation in SI.

Electrical TransportLinear sweep

Linear sweep voltammetry (LSV)

2025 · Dual single atomic Fe-Ni sites in N‑doped nanoporous carbon for high-efficiency potassium periodate activation toward pollutant abatement

Fe2Ni1-NC-900 coated glassy carbon electrode · Electrode · GCE with or without Fe2Ni1-NC-900 coating; PI and Orange II present under standard catalytic conditions.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode solid-state FTSC testing; UV-vis transmittance; CV/GCD/EIS

2025 · Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices

Sandwich-type flexible transparent CuNi-HHTP supercapacitor · Electrode · Sandwich-type flexible transparent supercapacitor used as device-architecture control.

Electrochemistry ApplicationCyclic voltammetry

CV/GCD ratio comparison

2025 · Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices

CuNi-HHTP nanorods · Powder · CuNi-HHTP electrodes with Cu/Ni atomic ratios 1:1, 1:3, and 3:1; Fig. S3 at 100 mV s^-1 and 100 uA cm^-2.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD in three-electrode system

2025 · Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices

CuNi-HHTP nanorods · Powder · 3 M KCl electrolyte; Ag/AgCl reference and Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

CV, LSV and EIS

2025 · Electro Fenton degradation of glyphosate by incrassated defect-free conductive Cu metal organic framework

10CAT-1 Film · Electrode · Bio-Logic SP-300; CV after 100 scans at 20 mV s-1; LSV at 5 mV s-1 in PBS pH 7.0; EIS Nyquist at 1.40 V vs RHE in 1 M KOH.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Electrochemical Synthesis of Cu3(HHTP)2Metal–Organic Frameworks from Cu Nanoparticles for Chemiresistive Gas Sensing

Cu nanoparticle-decorated Pt/glass IDE (precursor, pre-growth) · Thin Film · Cu-NP-decorated IDE in HHTP+TBMAMS growth solution; potential ramped -0.80 to +1.20 V at 0.02 V/s in 0.00244 V steps, 40 cycles; two IDE sides connected as working electrode, Ag/AgCl reference

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry nitric oxide sensing

2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media

Co3(HHTP)2 dropcast on glassy carbon electrode · Electrode · 17 uM NO in 0.1 M PBS buffer, pH 7.4; 50 mV/s; second scan versus PBS.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry nitric oxide sensing

2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media

Cu3(HHTP)2 dropcast on glassy carbon electrode · Electrode · 17 uM NO in 0.1 M PBS buffer, pH 7.4; 50 mV/s; second scan versus PBS.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry nitric oxide sensing

2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media

Ni3(HHTP)2 dropcast on glassy carbon electrode · Electrode · 17 uM NO in 0.1 M PBS buffer, pH 7.4; 50 mV/s; second scan versus PBS.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry nitric oxide sensing

2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media

Zn3(HHTP)2 dropcast on glassy carbon electrode · Electrode · 17 uM NO in 0.1 M PBS buffer, pH 7.4; 50 mV/s; second scan versus PBS.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry polymer stabilisation screening

2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media

Ni3(HHTP)2@PEDOT:PSS@GCE · Electrode · 17 uM NO in 0.1 M PBS; compare first and tenth CV scans from -0.7 to +1.2 V vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic b-value analysis

2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance

ZnCo-MOF-HMIM/Ni-foam working electrode · Electrode · Peak-current log(i) vs log(v) analysis for HMIM, BDC and ABDC electrodes.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (three-electrode)

2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance

ZnCo-MOF-ABDC/Ni-foam working electrode · Electrode · 6 M KOH; Ag/AgCl reference, glassy carbon counter; 0.0-0.5 V; scan rates 5-100 mV s^-1; comparison at 10 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (three-electrode)

2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance

ZnCo-MOF-BDC/Ni-foam working electrode · Electrode · 6 M KOH; Ag/AgCl reference, glassy carbon counter; 0.0-0.5 V; scan rates 5-100 mV s^-1; comparison at 10 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (three-electrode)

2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance

ZnCo-MOF-HMIM/Ni-foam working electrode · Electrode · 6 M KOH; Ag/AgCl reference, glassy carbon counter; 0.0-0.5 V; scan rates 5-100 mV s^-1; comparison at 10 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode CV and GCD

2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance

ZnCo-MOF-HMIM//AC asymmetric two-electrode device · Electrode · 6 M KOH; CV up to 100 mV s^-1 over 0-1.6 V; GCD from 1 to 10 A g^-1.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode ASC CV, GCD and EIS on CHI760e

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni3Co1-DPTTZ-MOF//AC ASC device · Electrode · 3.0 M KOH electrolyte; CV from 0.0-1.0 to 0.0-1.5 V; scan rates 10-100 mV s-1; GCD 1-10 A g-1; EIS 0.01-100 kHz at open-circuit voltage

Electrochemistry ApplicationCyclic voltammetry

Power-law CV analysis and capacitive/diffusion contribution fitting

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Co-DPTTZ-MOF nickel-foam working electrode · Electrode · Surface-capacitance and diffusion-control contributions calculated from CV data at 10-70 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Power-law CV analysis and capacitive/diffusion contribution fitting

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni-DPTTZ-MOF nickel-foam working electrode · Electrode · Surface-capacitance and diffusion-control contributions calculated from CV data at 10-70 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Power-law CV analysis and capacitive/diffusion contribution fitting

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni1Co1-DPTTZ-MOF nickel-foam working electrode · Electrode · Surface-capacitance and diffusion-control contributions calculated from CV data at 10-70 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Power-law CV analysis and capacitive/diffusion contribution fitting

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni1Co3-DPTTZ-MOF nickel-foam working electrode · Electrode · Surface-capacitance and diffusion-control contributions calculated from CV data at 10-70 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Power-law CV analysis and capacitive/diffusion contribution fitting

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni3Co1-DPTTZ-MOF nickel-foam working electrode · Electrode · CVs fitted to i = a v^b and i = k1 v + k2 v^1/2 at scan rates 10-70 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Three-electrode cyclic voltammetry and galvanostatic charge-discharge

2025 · Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Ni3Co1-DPTTZ-MOF nickel-foam working electrode · Electrode · Pt sheet counter electrode, Ag/AgCl reference electrode; scan rates and current densities varied; electrolyte not explicitly stated in main-text three-electrode paragraph

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks

Cu-S-HHS solvothermal powder · Powder · Cu-X-HHS/Nafion dispersion on glassy carbon electrode; Ag/Ag+ reference, Pt counter; 0.4 mol/L TBAPF6 in dry acetonitrile; -1.2 to 1.2 V vs Ag/Ag+ at 50 mV s-1 under N2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks

Cu-Se-HHS solvothermal powder · Powder · Cu-X-HHS/Nafion dispersion on glassy carbon electrode; Ag/Ag+ reference, Pt counter; 0.4 mol/L TBAPF6 in dry acetonitrile; -1.2 to 1.2 V vs Ag/Ag+ at 50 mV s-1 under N2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks

Cu-Te-HHS solvothermal powder · Powder · Cu-X-HHS/Nafion dispersion on glassy carbon electrode; Ag/Ag+ reference, Pt counter; 0.4 mol/L TBAPF6 in dry acetonitrile; -1.2 to 1.2 V vs Ag/Ag+ at 50 mV s-1 under N2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs

Co-Ni(TPA)-2 electrode on Cu foam · Electrode · Potential range 0-1 V; conventional three-electrode configuration.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs

Ni(TPA) electrode on Cu foam · Electrode · Potential range 0-1 V; conventional three-electrode configuration; electrolyte not restated in CV paragraph, likely same KOH system as CP.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs

Zn-Ni(TPA)-2 electrode on Cu foam · Electrode · Potential range 0-1 V; conventional three-electrode configuration.

Electrochemistry ApplicationCyclic voltammetry

Hybrid supercapacitor CV, GCD, Ragone plot, and cycling

2025 · Enhancing the Electrochemical Energy Storage of Metal-Organic Frameworks: Linker Engineering and Size Optimization

Ni-tdc-bpe(0.5)//AC hybrid supercapacitor · Electrode · Ni-tdc-bpe(0.5) positive electrode, AC negative electrode, 3 M KOH electrolyte; current densities 0.5-5 A/g; scan rates 10-100 mV/s

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV and GCD

2025 · Enhancing the Electrochemical Energy Storage of Metal-Organic Frameworks: Linker Engineering and Size Optimization

Ni-MOF working electrode series · Electrode · 3.0 M KOH electrolyte; Pt counter electrode; Hg/HgO reference; CHI760e station; room temperature

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2025 · Fabrication of a Novel Cu Based Conjugated Coordination Polymer for Effective Electroreduction of Nitrate to Ammonia and Zn–Nitrate Batteries

Cu3(HHTP)2/CF pine-like comparison electrode · Electrode · Cdl determined from CV; detailed curves are in Figure S17, whose caption and rendered SI image are available.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2025 · Fabrication of a Novel Cu Based Conjugated Coordination Polymer for Effective Electroreduction of Nitrate to Ammonia and Zn–Nitrate Batteries

Cu3(HITP)2/CF pine-like electrode · Electrode · Cdl determined from CV; detailed curves are in Figure S17, whose caption and rendered SI image are available.

Electrochemistry ApplicationLinear sweep

Nitrate electroreduction to ammonia; LSV and chronoamperometry; indophenol blue NH3 quantification

2025 · Fabrication of a Novel Cu Based Conjugated Coordination Polymer for Effective Electroreduction of Nitrate to Ammonia and Zn–Nitrate Batteries

Cu3(HITP)2/CF pine-like electrode · Electrode · H-type cell; 1 M KOH + 0.1 M NaNO3; graphite counter electrode; Hg/HgO reference; potentials vs RHE; room temperature; potentiostatic tests 1 h from -0.5 to -0.9 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry and H-cell controlled-potential electrolysis

2025 · Fibrous Pb(II)-Based Coordination Polymer Operable as a Photocatalyst and Electrocatalyst for High-Rate, Selective CO2-to-Formate Conversion

KGF-9/Ketjen Black/Nafion electrode optimisation series · Electrode · 0.5 M KHCO3 catholyte under Ar or CO2; H-type cell at -0.8 V vs RHE for 120 min; 25 uL 5 wt% Nafion; varied KB content.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

Co-MOF planar symmetric supercapacitor · Electrode · Three-electrode system; scan rates 3-100 mV s^-1; potential window -4 V to 4 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

Mn-MOF planar symmetric supercapacitor · Electrode · Three-electrode system; scan rates 3-100 mV s^-1; potential window -4 V to 4 V; bending-angle CV also tested.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

Ni-MOF planar symmetric supercapacitor · Electrode · Three-electrode system; scan rates 3-100 mV s^-1; potential window -4 V to 4 V.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV)

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

Mn-MOF planar symmetric supercapacitor · Electrode · LSV curves recorded over the 8 V potential window with forward and reverse scans.

Electrochemistry ApplicationCyclic voltammetry

CV redox peak separation comparison

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

Mn-MOF planar symmetric supercapacitor · Electrode · Fig. S6 compares Delta Ea,c values at 5 and 10 mV s^-1 for Co-MOF, Ni-MOF and Mn-MOF supercapacitors.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD of series/parallel supercapacitor packs

2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation

2S-SP Mn-MOF supercapacitor pack · Electrode · 2S/5S series and 2P/5P parallel packs made from Mn-MOF planar supercapacitors; CV at 50 mV s^-1; GCD at 0.175 A g^-1 for selected packs.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry comparison

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Self-standing Ni-Fe(PDC)/GR electrode · Electrode · 0.1 M PBS pH 7 with 5 uM carbendazim; scan rate 50 mV s^-1; three-electrode setup with Pt counter, Ag/AgCl/KCl reference, and MOF-deposited graphite rod working electrode.

Sensing ApplicationCyclic voltammetry

CV concentration calibration

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Self-standing Ni-Fe(PDC)/GR electrode · Electrode · 0.1 M PBS pH 7; carbendazim concentrations 2.5-100 uM; scan rate 25 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry scan-rate study

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Self-standing Ni-Fe(PDC)/GR electrode · Electrode · 0.1 M PBS pH 7 containing 5.0 uM carbendazim; scan rates 5-100 mV s^-1.

Sensing ApplicationDifferential pulse

differential pulse voltammetry calibration

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Self-standing Ni-Fe(PDC)/GR electrode · Electrode · 0.1 M pH 7 PBS; carbendazim concentrations 0.05-320 uM; potential range 0.3-1.3 V; pulse width 0.05 s and amplitude 50 mV.

Electrochemistry ApplicationDifferential pulse

DPV pH optimisation

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Self-standing Ni-Fe(PDC)/GR electrode · Electrode · DPV of 10 uM carbendazim in 0.1 M PBS over pH 5.0-11.0 at Ni-Fe(PDC)/GR.

Sensing ApplicationDifferential pulse

spiked-recovery DPV and HPLC validation

2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode

Ni-Fe(PDC)/GR in spiked strawberry and apple juice · Electrode · Strawberry and apple juice homogenates centrifuged, filtered, diluted 100 times with 0.1 M PBS pH 7.0, spiked with carbendazim, and analysed by DPV with HPLC comparison.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in pure ionic liquid [BMIM][TFSI]

2025 · Impact of the Channel Length in Nanoporous Electric Double-Layer Capacitors on the Charge Transport Explored by Metal-Organic Framework Films

Cu3(HHTP)2 SURMOF synthesis-cycle series · Thin Film · Three-electrode cell; Cu3(HHTP)2/Au-coated Si working electrode, Pt sheet counter electrode, Ag/AgCl reference; 0-0.5 V vs Ag/AgCl; scan rates 0.1-3000 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in 3 M KCl aqueous electrolyte

2025 · Impact of the Channel Length in Nanoporous Electric Double-Layer Capacitors on the Charge Transport Explored by Metal-Organic Framework Films

Cu3(HHTP)2 SURMOF synthesis-cycle series · Thin Film · Three-electrode cell; Cu3(HHTP)2/Au-coated Si working electrode, Pt sheet counter electrode, Ag/AgCl reference; 0-0.3 V vs Ag/AgCl; scan rates 0.1-3000 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

asymmetric supercapacitor CV, GCD, EIS, Ragone, and cycling

2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitors

Co/Ni-HHTP@CP||AC asymmetric supercapacitor · Electrode · Co/Ni-HHTP@CP positive electrode, activated carbon negative electrode, 1 M KOH electrolyte; device potential window 0-1.6 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry integrated area comparison

2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitors

Co/Ni-HHTP@CP electrode · Electrode · CV curves at scan rates 10-100 mV s-1 in 1 M KOH; integrated areas compared among bimetallic c-MOF@CP electrodes.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD, and EIS protocol

2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitors

Co/Ni-HHTP@CP electrode · Electrode · c-MOFs@CP used directly as working electrode with Pt counter, Ag/AgCl reference, and 1 M KOH electrolyte under ambient conditions.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD blank-control testing

2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries

Super P + PVDF blank electrode · Electrode · Super P + PVDF on carbon-coated aluminium foil; 0.5 mV s-1 CV and 0.2 A g-1 GCD

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries

Cu-HBB-MOF cathode electrode in CR2025 potassium half-cell · Electrode · CR2025 K half-cell; 1.0-3.8 V vs K/K+; 0.5 mV s-1; optimal electrolyte 1 M KPF6 in DME

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries

Cu-Salphen-MOF cathode electrode in CR2025 potassium half-cell · Electrode · CR2025 K half-cell; 1.0-3.8 V vs K/K+; 0.5 mV s-1

Electrochemistry ApplicationCyclic voltammetry

scan-rate CV / Dunn analysis

2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries

Cu-HBB-MOF cathode electrode in CR2025 potassium half-cell · Electrode · CV curves at 0.6, 0.8, 1.0, 1.2 and 1.4 mV s-1; b-value and capacitive contribution analysis

Electrical TransportCyclic voltammetry

Two-probe I-V method by CV

2025 · Interconnected Lamellar 3D Semiconductive PCP for Rechargeable Aqueous Zinc Battery Cathodes

Pressed VO-HHTP pellet · Pellet · I-V curves from -1 V to 1 V at 2 mV s-1; conductivity calculated by Ohm law and pellet geometry.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry kinetic analysis

2025 · Interconnected Lamellar 3D Semiconductive PCP for Rechargeable Aqueous Zinc Battery Cathodes

VO-HHTP 80 wt% composite cathode · Electrode · CV at scan rates 0.4-1.8 mV s-1; b-value and non-diffusion-controlled contribution analysis.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

OER LSV, Tafel, EIS, CV double-layer capacitance and ECSA analysis

2025 · Ligand engineering of Co-MOF-74 with hexaaminotriphenylene for enhanced oxygen reduction reaction in zinc-air batteries

Co-MOF-74-HATP@EC-300J carbon-cloth OER electrode · Electrode · OER in N2-saturated 1 M KOH; LSV at 5 mV s-1 after 50 CV cycles activation; EIS from 10^-2 to 10^5 Hz at 5 mV amplitude; Cdl from 5-25 mV s-1 CV in non-Faradaic range.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

ORR CV, LSV, rotating ring-disk electrode and Tafel analysis

2025 · Ligand engineering of Co-MOF-74 with hexaaminotriphenylene for enhanced oxygen reduction reaction in zinc-air batteries

Co-MOF-74-HATP@EC-300J RRDE electrode · Electrode · ORR in 1 M KOH after N2 or O2 purging for 30 min; LSV at 5 mV s-1 and different rotation speeds; Fig. 3(b) at 1600 rpm; RRDE ring electrode at 1.5 V vs RHE.

Electrochemistry ApplicationCyclic voltammetry

accelerated CV ageing, Koutecky-Levich analysis and H2O2 selectivity

2025 · Ligand engineering of Co-MOF-74 with hexaaminotriphenylene for enhanced oxygen reduction reaction in zinc-air batteries

Co-MOF-74-HATP@EC-300J RRDE electrode · Electrode · LSV before/after 10,000 CV cycles; electron-transfer number and H2O2 yield from RRDE/K-L analysis; collection efficiency N=0.37.

Sensing ApplicationDifferential pulse

DPV sensing comparison on bare GCE

2025 · Ligand-Insertion Strategy for Constructing 2D Conjugated Metal–Organic Framework with Large Pore Size for Electrochemical Analytics

Bare GCE reference electrode · Electrode · DPV for 5-HT, UA and CA under same pulse settings; comparative calibration plots in Figure S17.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with redox probes and Randles-Sevcik analysis

2025 · Ligand-Insertion Strategy for Constructing 2D Conjugated Metal–Organic Framework with Large Pore Size for Electrochemical Analytics

Cu3(HHTP)2-coated GCE control · Electrode · Same KCl 0.1 M redox-probe conditions as target electrode, using Cu3(HHTP)2/GCE control.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with redox probes and Randles-Sevcik analysis

2025 · Ligand-Insertion Strategy for Constructing 2D Conjugated Metal–Organic Framework with Large Pore Size for Electrochemical Analytics

Cu3(HHTP)(DHBQ)1.5/1.53-coated GCE · Electrode · Three-electrode setup with MOF-loaded GCE working electrode, Ag/AgCl reference and Pt counter; KCl 0.1 M containing FcMeOH, Fe(CN)6(3-) or IrCl6(3-) at 1 mM; scan-rate-dependent CV.

Electrochemistry ApplicationCyclic voltammetry

BSH cyclic voltammetry potential-window test

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn3//rGO BSH · Unknown · CV measured for 1.2, 1.3, 1.4, 1.5 and 1.6 V at 20 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe · Electrode · 3 M KOH electrolyte; Pt counter electrode; Ag/AgCl reference; capacitance from CV curves.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn1 · Electrode · 3 M KOH electrolyte; Pt counter electrode; Ag/AgCl reference; capacitance from CV curves.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn2 · Electrode · 3 M KOH electrolyte; Pt counter electrode; Ag/AgCl reference; capacitance from CV curves.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn3 · Electrode · 3 M KOH electrolyte; Pt counter electrode; Ag/AgCl reference; capacitance from CV curves.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn4 · Electrode · 3 M KOH electrolyte; Pt counter electrode; Ag/AgCl reference; capacitance from CV curves.

Electrochemistry ApplicationCyclic voltammetry

CV comparison

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn3 without urea · Electrode · SI CV comparison of NiFe-Mn3 with and without urea; numeric curves unavailable in provided SI text.

Electrochemistry ApplicationCyclic voltammetry

CV rate test

2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices

NiFe-Mn3 · Electrode · Specific capacitance retention with scan rate increasing from 5 to 30 mV/s.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Metal-halide porous framework superlattices

PbI2@NU-1000 single crystals · Single Crystal · 0.1 M nBu4NPF6 in CH3CN; Pt counter; Hg/Hg2Cl2 reference; scan rate 100 mV s-1 in Methods; SI captions show 50 mV s-1 for plotted CV

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Metal-halide porous framework superlattices

PbI2@PCN-606 single crystals · Single Crystal · 0.1 M nBu4NPF6 in CH3CN; Pt counter; Hg/Hg2Cl2 reference; scan rate 100 mV s-1 in Methods; SI captions show 50 mV s-1 for plotted CV

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Metal-halide porous framework superlattices

PbI2@PCN-609 single crystals · Single Crystal · 0.1 M nBu4NPF6 in CH3CN; Pt counter; Hg/Hg2Cl2 reference; scan rate 100 mV s-1 in Methods; SI captions show 50 mV s-1 for plotted CV

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Metal-halide porous framework superlattices

PbI2@PCN-700 single crystals · Single Crystal · 0.1 M nBu4NPF6 in CH3CN; Pt counter; Hg/Hg2Cl2 reference; scan rate 100 mV s-1 in Methods; SI captions show 50 mV s-1 for plotted CV

Electrochemistry ApplicationCyclic voltammetry

CC-CV charging state-of-charge versus time

2025 · Metal-organic framework glass stabilizes high-voltage cathodes for efficient lithium-metal batteries

Glass@NCM-811, 2 wt% MOF Glass coating · Powder · CC charging at 6 C followed by CV charging with 0.2 C cutoff current.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV scan-rate dependence

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Co-HITP nanosheets (Co-HITP NSs) · Nanosheet · Non-Faradaic potential window, scan rates 2-10 mV s^-1; Cdl extracted from j vs scan-rate slope.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV scan-rate dependence

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

CoNi-HITP nanosheets (CoNi-HITP NSs) · Nanosheet · Non-Faradaic potential window, scan rates 2-10 mV s^-1; Cdl extracted from j vs scan-rate slope.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV scan-rate dependence

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanosheets (Ni-HITP NSs) · Nanosheet · Non-Faradaic potential window, scan rates 2-10 mV s^-1; Cdl extracted from j vs scan-rate slope.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry screening

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Co-HITP nanoparticles (Co-HITP NPs) · Powder · Ar-saturated 0.5 M H2SO4; conventional three-electrode configuration.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Co-HITP nanosheets (Co-HITP NSs) · Nanosheet · Ar-saturated 0.5 M H2SO4; geometric-area-normalised current density; 85% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

CoNi-HITP nanosheets (CoNi-HITP NSs) · Nanosheet · Ar-saturated 0.5 M H2SO4; geometric-area-normalised current density; 85% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry screening

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Cu-HITP nanoparticles · Powder · Ar-saturated 0.5 M H2SO4; conventional three-electrode configuration.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry screening

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Fe-HITP nanoparticles/aggregate · Powder · Ar-saturated 0.5 M H2SO4; conventional three-electrode configuration.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanoparticles (Ni-HITP NPs) · Powder · Ar-saturated 0.5 M H2SO4; three-electrode cell; RDE 5 mm; catalyst loading 0.2 mg cm^-2; 85% iR correction; 10 mV s^-1; no rotation per SI.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry screening

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanoparticles (Ni-HITP NPs) · Powder · Ar-saturated 0.5 M H2SO4; conventional three-electrode configuration.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanosheets (Ni-HITP NSs) · Nanosheet · Ar-saturated 0.5 M H2SO4; three-electrode cell; RDE 5 mm; catalyst loading 0.2 mg cm^-2; 85% iR correction; 10 mV s^-1; no rotation per SI.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanosheets (Ni-HITP NSs) · Nanosheet · Ar-saturated 0.5 M H2SO4; geometric-area-normalised current density; 85% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry screening

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Zn-HITP nanoparticles/aggregate · Powder · Ar-saturated 0.5 M H2SO4; conventional three-electrode configuration.

Electrochemistry ApplicationLinear sweep

Tafel analysis from HER LSV curves

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Co-HITP nanosheets (Co-HITP NSs) · Nanosheet · 0.5 M H2SO4 HER conditions.

Electrochemistry ApplicationLinear sweep

Tafel analysis from HER LSV curves

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

CoNi-HITP nanosheets (CoNi-HITP NSs) · Nanosheet · 0.5 M H2SO4 HER conditions.

Electrochemistry ApplicationLinear sweep

Tafel analysis from HER LSV curves

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanoparticles (Ni-HITP NPs) · Powder · 0.5 M H2SO4 HER conditions.

Electrochemistry ApplicationLinear sweep

Tafel analysis from HER LSV curves

2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media

Ni-HITP nanosheets (Ni-HITP NSs) · Nanosheet · 0.5 M H2SO4 HER conditions.

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry and CV

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-HHTP electrode · Electrode · Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry and CV

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-HHTP/OTS electrode · Electrode · Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry and CV

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-THQ electrode · Electrode · Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry and CV

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Ni-HHTP electrode · Electrode · Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry and CV

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

ZIF-8 electrode · Electrode · Simulated sweat-lipid flow; current monitored at 0.5 V for 16 min; CV after flow

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-HHTP electrode · Electrode · Artificial sweat pH 5.5; three-electrode setup; step 4 mV, width 0.2 s, period 0.5 s, amplitude 50 mV

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-HHTP/OTS electrode · Electrode · Artificial sweat pH 5.5; three-electrode setup; step 4 mV, width 0.2 s, period 0.5 s, amplitude 50 mV

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Cu-THQ electrode · Electrode · Artificial sweat pH 5.5; three-electrode setup; step 4 mV, width 0.2 s, period 0.5 s, amplitude 50 mV

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

Ni-HHTP electrode · Electrode · Artificial sweat pH 5.5; three-electrode setup; step 4 mV, width 0.2 s, period 0.5 s, amplitude 50 mV

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Mitigating lipid biofouling in wearable sweat sensors: A study on conductive MOF-based electrodes with tuned hydrophilicity

ZIF-8 electrode · Electrode · Artificial sweat pH 5.5; three-electrode setup; step 4 mV, width 0.2 s, period 0.5 s, amplitude 50 mV

Electrochemistry ApplicationCyclic voltammetryDifferential pulse

Solid-state CV and DPV in CH2Cl2 with 0.1 M LiClO4 versus Fc/Fc+

2025 · Mixed Ionic and Electronic Conductivity in a Tetrathiafulvalene-Phosphonate Metal-Organic Framework

TTFTP-La/Nafion glassy-carbon working electrode · Electrode · TTFTP-La MOF on glassy carbon/Nafion electrode at scan rates 0.1, 0.3 and 0.5 V/s.

Electrochemistry ApplicationCyclic voltammetry

solid-electrode cyclic voltammetry

2025 · Mixed proton-electron conductivity in a dynamic 3D metal-organic framework

Al-MOF solid-electrode CV composite · Electrode · Three-electrode Bio-Logic setup; GC working electrode composite; Ag/AgCl saturated KCl reference; graphite counter; 1 M H2SO4; 10 mV/s; 0.9-0 V vs Ag/AgCl for Al-MOF.

Electrochemistry ApplicationCyclic voltammetry

solid-electrode cyclic voltammetry

2025 · Mixed proton-electron conductivity in a dynamic 3D metal-organic framework

Fe-MOF solid-electrode CV composite · Electrode · Three-electrode Bio-Logic setup; GC working electrode composite; Ag/AgCl saturated KCl reference; graphite counter; 1 M H2SO4; 10 mV/s; 0.85-0.0 V vs Ag/AgCl for Fe-MOF.

Electrochemistry ApplicationCyclic voltammetry

bulk/grinding homogeneity CV/EIS

2025 · Modulating the redox states in a 3D conductive MOF for sweat ascorbic acid monitoring

I2@FeTHQ-1 to I2@FeTHQ-5 · Powder · CV/EIS and elemental mapping for scaled-up and physically ground samples

Electrochemistry ApplicationCyclic voltammetry

CV

2025 · Modulating the redox states in a 3D conductive MOF for sweat ascorbic acid monitoring

I2@FeTHQ/ITO working electrode · Electrode · CV in three-electrode PBS/ITO setup; FeTHQ vs I2@FeTHQ and dopant controls

Sensing ApplicationCyclic voltammetry

CV scan-rate AA sensing

2025 · Modulating the redox states in a 3D conductive MOF for sweat ascorbic acid monitoring

I2@FeTHQ/ITO working electrode · Electrode · AA in 0.1 M PBS, pH 7, 500 uM; scan rates 10-200 mV/s

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate b-value analysis

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with Ni-COF@PP separator · Electrode · CV curves at 0.1-0.5 mV s-1; log peak current versus log sweep rate

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate b-value analysis

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with PP separator control · Electrode · CV curves at 0.1-0.5 mV s-1; log peak current versus log sweep rate

Electrochemistry ApplicationCyclic voltammetry

CV of Li2S6 symmetric cell

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

Ni-COF Li2S6 symmetric cell electrode · Electrode · 20 uL Li2S6 catholyte (0.2 M Li2S6 in DOL/DME), mass loading ~1 mg cm-2, -1.0 to 1.0 V, 5 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Li+ diffusion coefficient from CV

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with Ni-COF@PP separator · Electrode · Randles-Sevcik analysis of CV curves at varied scan rates

Electrochemistry ApplicationCyclic voltammetry

Li+ diffusion coefficient from CV

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with PP separator control · Electrode · Randles-Sevcik analysis of CV curves at varied scan rates

Electrochemistry ApplicationCyclic voltammetry

Li-S battery CV and Tafel

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with Ni-COF@PP separator · Electrode · CV at 0.1 mV s-1; Tafel slopes from reductive and oxidative CV peaks

Electrochemistry ApplicationCyclic voltammetry

Li-S battery CV and Tafel

2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries

CR2032 Li-S cell with PP separator control · Electrode · CV at 0.1 mV s-1; Tafel slopes from reductive and oxidative CV peaks

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, double-layer capacitance, and ECSA

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U catalyst-coated nickel foam electrode · Electrode · CV potential range 0-0.7 V in 1 M KOH; scan rates 20, 40, 60, 80, and 100 mV/s for U; Cdl from DeltaJ/2 versus scan rate in non-Faradaic region at 1.4 V vs RHE; Cs = 0.04 mF/cm2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, double-layer capacitance, and ECSA

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U-N catalyst-coated nickel foam electrode · Electrode · CV comparison at 40 mV/s in 1 M KOH; Cdl from DeltaJ/2 versus scan rate in non-Faradaic region at 1.4 V vs RHE; Cs = 0.04 mF/cm2.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U catalyst-coated nickel foam electrode · Electrode · Three-electrode HER test in 1 M KOH; LSV potential range 0 to -2 V converted to RHE; overpotential at -10 mA/cm2.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U-N catalyst-coated nickel foam electrode · Electrode · Three-electrode HER test in 1 M KOH; LSV potential range 0 to -2 V converted to RHE; overpotential at -10 mA/cm2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry and Tafel analysis

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U catalyst-coated nickel foam electrode · Electrode · Three-electrode cell with Ag/AgCl reference, Pt counter, catalyst-coated nickel foam working electrode; 1 M KOH, pH about 14; OER LSV 0 to 1 V, converted to RHE, 5 mV/s; values compared at 20 mA/cm2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry and Tafel analysis

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U-N catalyst-coated nickel foam electrode · Electrode · Three-electrode cell with Ag/AgCl reference, Pt counter, catalyst-coated nickel foam working electrode; 1 M KOH, pH about 14; OER LSV 0 to 1 V, converted to RHE, 5 mV/s; values compared at 20 mA/cm2.

Electrochemistry ApplicationCyclic voltammetry

OER CV cycling followed by chronoamperometry

2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study

U-N catalyst-coated nickel foam electrode · Electrode · U-N OER stability: 200 CV cycles at 100 mV/s, then chronoamperometry for 10 h at constant potential corresponding to 20 mA/cm2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand

Cu-HATC CV composite electrode ink · Electrode · MOF/Super P/PTFE on glassy carbon; Ag/Ag+ reference; Pt counter; 0.1 M TABF/acetonitrile; 100 mV/s

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with ferrocene reference

2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand

Cu-HATC CV composite electrode ink · Electrode · Same CV electrode with Ferrocene reference

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand

Ni-HATC CV composite electrode ink · Electrode · MOF/Super P/PTFE on glassy carbon; Ag/Ag+ reference; Pt counter; 0.1 M TABF/acetonitrile; 100 mV/s

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with ferrocene reference

2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand

Ni-HATC CV composite electrode ink · Electrode · Same CV electrode with Ferrocene reference

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Operando Raman and ex situ characterization of an iron-based conductive MOF as a negative electrode in Li-ion batteries

Fe-HHTP composite Li-ion battery electrode on copper foil · Electrode · Autolab M204; voltage range 0.1-3.0 V vs Li/Li+; first three cycles at 0.1 mV s-1 and third scan at scan rates 0.1-10 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Electrochemical impedance spectroscopy during CV cycling

2025 · Operando Raman and ex situ characterization of an iron-based conductive MOF as a negative electrode in Li-ion batteries

Fe-HHTP composite Li-ion battery electrode on copper foil · Electrode · Autolab M204; 1 MHz to 10 mHz; EIS at various potentials during CV cycles; equivalent circuits fitted with Z-view.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with electrochemical quartz crystal microbalance (EQCM)

2025 · Overscreening-Driven Modulation of Ion Adsorption and Desorption in Conductive MOF Electrodes by Charging Rates

Ni3(HITP)2 c-MOF film working electrode on Au-coated quartz · Electrode · CV across 10, 100 and 1000 mV s^-1 over -0.25 to 0.25 V versus PZC while quartz frequency was tracked; [EMIM][BF4] electrolyte at 60 deg C.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD of symmetric two-electrode button cell

2025 · Radiation-Induced in Situ Construction of 2D Conductive Defect-Rich Metal-Organic Frameworks for High-Performance Supercapacitor

Cu-CAT-Rad//Cu-CAT-Rad symmetric button cell · Electrode · KCl electrolyte; voltage window -0.5 to 0.5 V / 1.0 V; current densities 0.5-5 A g-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Radiation-Induced in Situ Construction of 2D Conductive Defect-Rich Metal-Organic Frameworks for High-Performance Supercapacitor

Cu-CAT-Rad/NF electrode · Electrode · Three-electrode cell; 3.0 M KCl; Hg/HgO reference; Pt counter; scan rates 2-100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Radiation-Induced in Situ Construction of 2D Conductive Defect-Rich Metal-Organic Frameworks for High-Performance Supercapacitor

Cu-CAT-Sol/NF electrode · Electrode · Three-electrode cell; 3.0 M KCl; Hg/HgO reference; Pt counter; scan rates 2-100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Screening-Enabled Chemiresistive Moisture Sensing with Tetrathiafulvalene-Based Electrically Conductive Metal–Organic Frameworks

Cd2(TTFTB) powder-coated glassy carbon electrode for CV · Electrode · 0.1 mol/L [N(t-C4H9)4](PF6) in EtOH; argon-bubbled electrolyte; Ag/AgNO3 reference calibrated with ferrocene; scan -0.3565 to 0.8435 V vs Fc+/Fc at 0.1 V/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Selenium-Substitution Strategy for Enhanced Mobility, Tunable Bandgap, and Improved Electrochemical Energy Storage in Semiconducting Conjugated Coordination Polymers

Ag4TSHQ/PTFE/carbon black electrode on carbon paper · Electrode · Three-electrode cell; 1 M KCl electrolyte; SCE reference; platinum counter; conductive carbon paper working electrode; scan rates in Figure 6 and Figure S13.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Selenium-Substitution Strategy for Enhanced Mobility, Tunable Bandgap, and Improved Electrochemical Energy Storage in Semiconducting Conjugated Coordination Polymers

Ag4TTHQ/PTFE/carbon black electrode on carbon paper · Electrode · Three-electrode cell; 1 M KCl electrolyte; SCE reference; platinum counter; conductive carbon paper working electrode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and ECL intensity-time response

2025 · Self-amplifying bimetallic conductive metal-organic framework for sensitive label-free electrochemiluminescence detection of aflatoxin B1

ZnCoMOFs black precipitate/powder · Powder · HHTP and ZnCoMOFs compared in the presence of potassium persulfate

Sensing ApplicationCyclic voltammetry

ECL detection using CV in three-electrode system

2025 · Self-amplifying bimetallic conductive metal-organic framework for sensitive label-free electrochemiluminescence detection of aflatoxin B1

AFB1/BSA/Ab/Au NPs/ZnCoMOFs/GCE · Electrode · 10 mL PBS electrolyte (1/15 M, pH 7.4, 100 mM K2S2O8), N2 injection, CV 0 to -1.6 V, scan rate 0.2 V/s, PMT 600 V, magnification 4

Electrochemistry ApplicationCyclic voltammetry

CV and electrochemical impedance spectroscopy (EIS)

2025 · Self-amplifying bimetallic conductive metal-organic framework for sensitive label-free electrochemiluminescence detection of aflatoxin B1

AFB1/BSA/Ab/Au NPs/ZnCoMOFs/GCE · Electrode · Layer-by-layer sensor construction assessed for ZnCoMOFs/GCE, Au NPs/ZnCoMOFs/GCE, Ab/Au NPs/ZnCoMOFs/GCE, BSA/Ab/Au NPs/ZnCoMOFs/GCE, and AFB1/BSA/Ab/Au NPs/ZnCoMOFs/GCE

Sensing ApplicationDifferential pulse

Amperometric/DPV dopamine detection in wearable patch context

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Hydrogel-assisted Ni-HAB MOF sweat sensor · Electrode · Hydrogel-integrated Ni-HAB MOF-based sweat sensor, applied potential 0.2 V vs Ag/AgCl, DA range 0-10 uM.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Ni-HAB MOF electrode · Electrode · Artificial sweat containing dopamine, pH 5.5; scan rates 0.05-0.5 V/s; scan range -0.6 to 0.8 V vs Ag/AgCl.

Sensing ApplicationDifferential pulse

DPV detection of AA and UA

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Ni-HAB MOF electrode · Electrode · DPV detection of ascorbic acid and uric acid; ranges in SI caption: AA 0-300 uM, UA 0-330 uM.

Sensing ApplicationDifferential pulse

DPV for physiological dopamine range

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Ni-HAB MOF electrode · Electrode · Artificial sweat pH 5.5; dopamine concentration range 0-20 uM from supplementary Fig. S11/S12.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Ni-HAB MOF electrode · Electrode · Artificial sweat, pH 5.5 unless otherwise noted; 0-0.6 V vs Ag/AgCl, 4 mV step, 0.2 s pulse width, 0.5 s pulse period, 50 mV pulse amplitude; dopamine concentration range 0-285 uM.

Sensing ApplicationDifferential pulse

DPV anti-interference test

2025 · Superhydrophilic hydrogel-enhanced conductive MOF-based wearable sweat sensors with anti-lipid biofouling capability

Ni-HAB MOF electrode · Electrode · DA detection in the presence of NaCl, KCl, urea, glucose, glycine, leucine, and lactic acid.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA analysis

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-W catalyst ink on glassy carbon electrode · Electrode · Non-Faradaic potential region 1.0-1.2 V vs RHE; scan-rate series in 0.1 M KCl ferri-ferro neutral solution; ECSA calculated using geometric area 0.196 cm2 and Cs = 0.035 mF/cm2.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA analysis

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-WO catalyst ink on glassy carbon electrode · Electrode · Non-Faradaic potential region 1.0-1.2 V vs RHE; scan-rate series in 0.1 M KCl ferri-ferro neutral solution; ECSA calculated using geometric area 0.196 cm2 and Cs = 0.035 mF/cm2.

Electrochemistry ApplicationCyclic voltammetry

Repeated cyclic voltammetry activation/stability

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-W catalyst ink on glassy carbon electrode · Electrode · 25 repeated CV cycles in 1 M KOH between 0.9 and 1.6 V vs RHE at 10 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Repeated cyclic voltammetry activation/stability

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-WO catalyst ink on glassy carbon electrode · Electrode · 25 repeated CV cycles in 1 M KOH between 0.9 and 1.6 V vs RHE at 10 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry redox/HOMO-LUMO analysis

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-W catalyst ink on glassy carbon electrode · Electrode · First-cycle CV at 10 mV/s; redox peaks used for Co2+/Co3+ and HOMO/LUMO estimates.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry redox/HOMO-LUMO analysis

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-WO catalyst ink on glassy carbon electrode · Electrode · First-cycle CV at 10 mV/s; redox peaks used for Co2+/Co3+ and HOMO/LUMO estimates.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-W catalyst ink on glassy carbon electrode · Electrode · 1 M KOH; three-electrode setup with Pt counter, Ag/AgCl reference, GCE working electrode; potentials converted to RHE; LSV before and after 25 CV cycles.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-WO catalyst ink on glassy carbon electrode · Electrode · 1 M KOH; three-electrode setup with Pt counter, Ag/AgCl reference, GCE working electrode; potentials converted to RHE; LSV before and after 25 CV cycles.

Electrochemistry ApplicationLinear sweep

Tafel analysis derived from LSV

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-W catalyst ink on glassy carbon electrode · Electrode · Tafel plots derived from OER LSV polarisation curves before and after CV activation.

Electrochemistry ApplicationLinear sweep

Tafel analysis derived from LSV

2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks

Co-CAT-WO catalyst ink on glassy carbon electrode · Electrode · Tafel plots derived from OER LSV polarisation curves after CV activation unless stated.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry specific capacitance

2025 · Turning 2D MOFs into Mixed Ionic-Electronic Conductors via Side Chain Engineering

Ni-1EG pristine powder · Powder · 1 M LiClO4 aqueous electrolyte; three-electrode setup; scan rates 2, 5, 10, 20 mV/s; 0.6-1 V vs Ag/Ag+

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry specific capacitance

2025 · Turning 2D MOFs into Mixed Ionic-Electronic Conductors via Side Chain Engineering

Ni-2EG pristine powder · Powder · 1 M LiClO4 aqueous electrolyte; three-electrode setup; scan rates 2, 5, 10, 20 mV/s; 0.6-1 V vs Ag/Ag+

Electrochemistry ApplicationCyclic voltammetry

CR2025 sodium-ion battery CV/GCD/cycling/rate tests

2025 · Two dimensional Conjugated Metal–Organic Frameworks with Multiple Redox-Active Sites towards High-Performance Sodium-Ion Battery

Cu-TTPQ SIB cathode composite electrode · Electrode · Metallic Na anode, glass-fibre separator, 1 M NaPF6 in DME electrolyte, 1.0-3.8 V; room temperature.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis and Dunn method

2025 · Two dimensional Conjugated Metal–Organic Frameworks with Multiple Redox-Active Sites towards High-Performance Sodium-Ion Battery

Cu-TTPQ SIB cathode composite electrode · Electrode · CV curves tested at scan rates from 0.6 to 1.6 mV s-1; b-value and capacitive/diffusion contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Two-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Triple Active Centers as High-Performance Cathodes for Flexible Zinc Batteries

1D Cu-TABQ composite cathode in CR2032 Zn cell · Electrode · 2032 Zn button cell, zinc metal anode; sweep rate 0.2 mV s-1, voltage window 0.3-1.5 V vs Zn2+/Zn.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2025 · Two-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Triple Active Centers as High-Performance Cathodes for Flexible Zinc Batteries

2D Cu-TABQ composite cathode in CR2032 Zn cell · Electrode · 2032 Zn button cell, zinc metal anode, 2M Zn(CF3SO3)2 electrolyte; sweep rate 0.2 mV s-1, voltage window 0.3-1.5 V vs Zn2+/Zn.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV and capacitive contribution analysis

2025 · Two-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Triple Active Centers as High-Performance Cathodes for Flexible Zinc Batteries

2D Cu-TABQ composite cathode in CR2032 Zn cell · Electrode · CV scan rates 0.2-1.0 mV s-1; b-value fitting and k1v/k2v1/2 capacitive/diffusion separation.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry

2025 · Ultrathin 2D metal-organic framework nanosheet arrays to boost the overall efficiency of water splitting

TIT-1@NS/NF · Electrode · Three-electrode HER in 1.0 M KOH at ambient temperature; scan rate 5 mV s-1; compared with Pt/C, TIT-1 and bare NF.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry

2025 · Ultrathin 2D metal-organic framework nanosheet arrays to boost the overall efficiency of water splitting

TIT-1@NS/NF · Electrode · Three-electrode OER in 1.0 M KOH at ambient temperature; scan rate 5 mV s-1; iR correction stated in results text although methods say no iR compensation.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2025 · Unraveling the Electrical, Dielectric, and Electrocatalytic Properties of Bimetallic Cobalt-Based Metal–Organic Frameworks

1:2 Mn:Co powder drop-cast on glassy carbon electrode · Electrode · Three-electrode cell, 1 M KOH, MOF-coated GCE working electrode, Pt wire counter, Ag/AgCl reference, 1500 rpm, 0-0.8 V vs reference, 1 mV s^-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2025 · Unraveling the Electrical, Dielectric, and Electrocatalytic Properties of Bimetallic Cobalt-Based Metal–Organic Frameworks

Co-BTC powder drop-cast on glassy carbon electrode · Electrode · Same three-electrode 1 M KOH protocol for Mn-BTC, Co-BTC, 1:1 Mn:Co, and 2:1 Mn:Co.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge/discharge in Zn-ion coin cell

2024 · 2D Conductive Metal-Organic Frameworks Based on Tetraoxa[8]circulenes as Promising Cathode for Aqueous Zinc Ion Batteries

Cu-TOC cathode electrode · Electrode · CR2032 cell, Zn foil anode, 1.0 M Zn(CF3SO3)2 electrolyte, 0.2-1.2 V vs Zn/Zn2+, CV at 1.0 mV s-1, GCD at 50 mA g-1.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate kinetic analysis

2024 · 2D Conductive Metal-Organic Frameworks Based on Tetraoxa[8]circulenes as Promising Cathode for Aqueous Zinc Ion Batteries

Cu-TOC cathode electrode · Electrode · CV curves at 0.2-1.0 mV s-1; b values from log(i) versus log(v); capacitive/diffusion contribution from k1v + k2v^1/2.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge/discharge in Zn-ion coin cell

2024 · 2D Conductive Metal-Organic Frameworks Based on Tetraoxa[8]circulenes as Promising Cathode for Aqueous Zinc Ion Batteries

Mn-TOC cathode electrode · Electrode · CR2032 cell, Zn foil anode, 1.0 M Zn(CF3SO3)2 electrolyte, 0.2-1.2 V vs Zn/Zn2+, CV at 1.0 mV s-1, GCD at 50 mA g-1.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge/discharge in Zn-ion coin cell

2024 · 2D Conductive Metal-Organic Frameworks Based on Tetraoxa[8]circulenes as Promising Cathode for Aqueous Zinc Ion Batteries

Zn-TOC cathode electrode · Electrode · CR2032 cell, Zn foil anode, 1.0 M Zn(CF3SO3)2 electrolyte, 0.2-1.2 V vs Zn/Zn2+, CV at 1.0 mV s-1, GCD at 50 mA g-1.

Electrochemistry ApplicationLinear sweep

RRDE LSV/selectivity in 0.1 M KOH

2024 · A Computation-Guided Design of Highly Defined and Dense Bimetallic Active Sites on a Two-Dimensional Conductive Metal–Organic Framework for Efficient H2O2 Electrosynthesis

Ni-TCPP(Co)/CNT/Nafion RRDE catalyst layer · Electrode · O2-saturated 0.1 M KOH, 1600 rpm, 10 mV/s, ring at 1.5 V vs RHE

Electrochemistry ApplicationLinear sweep

RRDE LSV/selectivity analogue comparison

2024 · A Computation-Guided Design of Highly Defined and Dense Bimetallic Active Sites on a Two-Dimensional Conductive Metal–Organic Framework for Efficient H2O2 Electrosynthesis

M2-TCPP(Co)/CNT/Nafion RRDE analogue series · Electrode · M2-TCPP(Co) analogues in O2-saturated 0.1 M KOH

Sensing ApplicationCyclic voltammetry

cyclic voltammetry for BPA and BPS

2024 · A novel pencil graphite electrode modified with an iron-based conductive metal-organic framework exhibited good ability in simultaneous sensing bisphenol A and bisphenol S

Fe-HHTP/PGE · Electrode · 50 uM BPA and BPS, scan rate 100 mV s-1, potential range -0.2 to 0.8 V; single and binary systems.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry scan-rate study and Laviron analysis

2024 · A novel pencil graphite electrode modified with an iron-based conductive metal-organic framework exhibited good ability in simultaneous sensing bisphenol A and bisphenol S

Fe-HHTP/PGE · Electrode · Scan rates 0.02 to 0.22 V s-1 for 50 uM BPA and BPS; Ip-v and Ep-ln(v) fitted.

Sensing ApplicationDifferential pulse

differential pulse voltammetry (DPV) calibration

2024 · A novel pencil graphite electrode modified with an iron-based conductive metal-organic framework exhibited good ability in simultaneous sensing bisphenol A and bisphenol S

Fe-HHTP/PGE · Electrode · Optimised conditions: pH 6.5, Fe-HHTP concentration 2 mg mL-1, deposition potential 0 V, deposition time 100 s; BPA/BPS concentration 0.01-100 uM.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with ferri/ferrocyanide redox probe

2024 · A novel pencil graphite electrode modified with an iron-based conductive metal-organic framework exhibited good ability in simultaneous sensing bisphenol A and bisphenol S

Fe-HHTP/PGE · Electrode · 2 mM [Fe(CN)6]3-/[Fe(CN)6]4-, scan rate 100 mV s-1, potential range -0.2 to 0.6 V.

Sensing ApplicationCyclic voltammetry

CV response comparison of M-HHTP controls

2024 · A novel pencil graphite electrode modified with an iron-based conductive metal-organic framework exhibited good ability in simultaneous sensing bisphenol A and bisphenol S

Fe-HHTP powder · Powder · Fe-HHTP compared with M-HHTP (M=Co, Ni, Cu or Zn) for simultaneous detection of BPA and BPS; values shown in radar plot.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · A Sensing Platform Based on Ni/Mn Bimetal-Organic Framework for Electrochemical Detection of Osimertinib

bare GCE · Electrode · 0.1 M NaOH with and without 0.05 mM OSIM; scan rate 0.02 V s-1; potential window shown 0 to 0.5 V.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry concentration series

2024 · A Sensing Platform Based on Ni/Mn Bimetal-Organic Framework for Electrochemical Detection of Osimertinib

Ni/Mn-MOF/GCE · Electrode · CV responses of Ni/Mn-MOF/GCE with OSIM additions from 0 to 0.05 mM in 0.1 M NaOH.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · A Sensing Platform Based on Ni/Mn Bimetal-Organic Framework for Electrochemical Detection of Osimertinib

Ni/Mn-MOF/GCE · Electrode · 0.1 M NaOH with and without 0.05 mM OSIM; scan rate 0.02 V s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate study

2024 · A Sensing Platform Based on Ni/Mn Bimetal-Organic Framework for Electrochemical Detection of Osimertinib

Ni/Mn-MOF/GCE · Electrode · 5 to 90 mV/s in NaOH containing 0.05 mM OSIM; oxidative peak current plotted against square root of scan rate.

Electrochemistry ApplicationCyclic voltammetry

CR2032 Li-ion coin cells; CV, galvanostatic charge-discharge, EIS

2024 · A Triptycene-Based Layered/Flower-Like 2D Conductive Metal–Organic Framework with 3D Extension as an Electrode for Efficient Li Storage

M-DBH Li-ion battery electrodes · Electrode · M-DBH cathode vs Li metal; 1 M LiPF6 in EC/DEC 1:1; voltage windows 1-3.5 V, 1.5-3.5 V, or 1.5-3.2 V; tests at 25 deg C where specified.

Electrochemistry ApplicationCyclic voltammetry

CR2032 Li-S coin cells; CV, galvanostatic charge-discharge, rate capability, EIS, diffusion coefficient from Randles-Sevcik

2024 · A Triptycene-Based Layered/Flower-Like 2D Conductive Metal–Organic Framework with 3D Extension as an Electrode for Efficient Li Storage

S@M-DBH Li-S battery electrodes · Electrode · S@M-DBH cathode vs Li metal; 1 M LiTFSI in DOL/DME 1:1 with 0.2 M LiNO3; scan rates 0.1-2 mV s^-1; cathode area 2 cm^2.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate series with Randles-Sevcik analysis

2024 · Aggregation-induced enhancement of pyrene-based metal-organic framework as a new electrochemiluminescence emitter for ultrasensitive detection of sulfadimethoxine

Ce-MOF/GCE · Electrode · Bare GCE and Ce-MOF/GCE measured in 5 mM K3[Fe(CN)6]/K4[Fe(CN)6] with KCl; scan rates 0.01-0.20 V s-1.

Electrochemistry ApplicationCyclic voltammetry

CV and ECL mechanism study

2024 · Aggregation-induced enhancement of pyrene-based metal-organic framework as a new electrochemiluminescence emitter for ultrasensitive detection of sulfadimethoxine

ZPM/GCE · Electrode · Bare GCE and ZPM/GCE in PBS with and without 0.05 M K2S2O8.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry construction characterisation

2024 · Aggregation-induced enhancement of pyrene-based metal-organic framework as a new electrochemiluminescence emitter for ultrasensitive detection of sulfadimethoxine

SDM/MCH/dsDNA/AuNPs/Ce-MOF/GCE with ZPM/SP tracer · Electrode · K3[Fe(CN)6]/K4[Fe(CN)6] (5 mM) containing 0.1 M KCl; curves for GCE, Ce-MOF/GCE, AuNPs/Ce-MOF/GCE, dsDNA/AuNPs/Ce-MOF/GCE, MCH/dsDNA/AuNPs/Ce-MOF/GCE and SDM/MCH/dsDNA/AuNPs/Ce-MOF/GCE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry control

2024 · Aliovalent Substitution Tunes Physical Properties in a Conductive Bis(dithiolene) Two-Dimensional Metal-Organic Framework

Fe3(THT)2 coated conductive-paper electrode · Electrode · 0.2 M LiPF6/DMF electrolyte; Fe3(THT)2 coated conductive paper working electrode

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2024 · Aliovalent Substitution Tunes Physical Properties in a Conductive Bis(dithiolene) Two-Dimensional Metal-Organic Framework

Ni3(THT)2/Super P/PVDF carbon-paper electrode · Electrode · 0.2 M LiPF6/DMF electrolyte; scan rates 1-15 mV s^-1; Pt counter, Ag pseudoreference, Fc/Fc+ calibration

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in MeCN electrolyte

2024 · Aliovalent Substitution Tunes Physical Properties in a Conductive Bis(dithiolene) Two-Dimensional Metal-Organic Framework

Ni3(THT)2/Super P/PVDF carbon-paper electrode · Electrode · 0.2 M LiPF6/MeCN electrolyte; scan rates 1-15 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2024 · An Enzyme-Encapsulated Metal-Organic Frameworks Nanomesh Biosensor for Salivary Glucose Detection

CNT/GOx@ZIF-8 biosensor electrode · Electrode · 5 mM K3[Fe(CN)6]/K4[Fe(CN)6] containing 0.1 M KCl; scan rate 50 mV s-1 within -0.2 to 0.4 V in 0.1 M PBS (pH 7.4).

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate Randles-Sevcik analysis

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Au/Cu-THQ/GCE · Electrode · CV at scan rates from 10 to 100 mV/s in ferri/ferrocyanide; active surface areas calculated using Randles-Sevcik equation.

Sensing ApplicationDifferential pulse

DPV clinical serum comparison

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · Human serum samples from sepsis cases measured by Apt/Au/Cu-THQ/GCE and compared with WB-80 microbial dynamic monitoring system.

Electrochemistry ApplicationCyclic voltammetry

CV

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Au/Cu-THQ/GCE · Electrode · CV in ferri/ferrocyanide electrolyte from -0.2 to 0.6 V at 0.1 V/s under optimal electrode fabrication conditions.

Electrochemistry ApplicationDifferential pulse

DPV and EIS

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · DPV and EIS used to verify aptamer immobilisation and LPS response on Au/Cu-THQ/GCE.

Sensing ApplicationDifferential pulse

DPV LPS calibration

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · DPV response to LPS concentrations from 0 to 1e-10 g/mL; calibration of peak current versus logarithm of LPS concentration.

Electrochemistry ApplicationCyclic voltammetry

CV optimisation of MOF loading and Au electrodeposition time

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Au/Cu-THQ/GCE · Electrode · CV current peaks compared across Cu-THQ or Cu-TCPP nanosheet volumes (5, 8, 10, 15 uL) and HAuCl4 electrodeposition times (30-270 s).

Sensing ApplicationDifferential pulse

DPV reproducibility and storage stability

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · Five biosensors measured for 1 pg/mL LPS reproducibility; biosensor stored at 4 C for 15 days and remeasured for 1 pg/mL LPS.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate analysis

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Au/Cu-THQ/GCE · Electrode · CV plots for Au/GCE, Au/Cu-TCPP/GCE and Au/Cu-THQ/GCE in 5.0 mM K3Fe(CN)6/K4Fe(CN)6 plus 0.1 M KCl at 10-100 mV/s; linear fits of peak current versus scan rate are labelled in Figure S10.

Sensing ApplicationDifferential pulse

DPV selectivity test

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · DPV responses measured with Glu, IgGs, HSA, AST, ALT and LPS, each at 0.1 pg/mL.

Sensing ApplicationDifferential pulse

DPV buffer-versus-serum matrix comparison

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · DPV peak currents with and without 0.1 pg/mL LPS compared in 1x PBS buffer and serum.

Sensing ApplicationDifferential pulse

DPV spiked serum recovery

2024 · Aptasensor based on gold nanostructure-decorated 2D Cu metal–organic framework nanosheets for highly sensitive and specific electrochemical lipopolysaccharide detection

Apt/Au/Cu-THQ/GCE · Electrode · LPS measured in 50-fold diluted human serum spiked at 1.00e-13, 1.00e-12 and 1.00e-11 g/mL.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

LSV, Tafel analysis, CV, EIS and Cdl/ECSA analysis

2024 · Carbon quantum dot-mediated binary metal-organic framework nanosheets for efficient oxygen evolution at ampere-level current densities in proton exchange membrane electrolyzers

NiFe-MOF-CQD on glassy carbon electrode · Electrode · Three-electrode OER in O2-saturated 1.0 M KOH; rotation 1600 rpm for LSV; Ag/AgCl reference; graphite counter; iR compensation applied; CV activation 0.926-1.826 V vs RHE for 15 cycles at 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 Batteries

comparative M-HHTP and KB cathode set · Electrode · LOB cathodes in Ar, 2.0-4.5 V, scan rate 1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 Batteries

comparative M-HHTP and KB cathode set · Electrode · LOB cathodes in O2, 2.0-4.5 V, scan rate 1 mV s-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 Batteries

comparative M-HHTP and KB cathode set · Electrode · ORR and OER polarization curves at sweep rate 1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and Randles-Sevcik analysis

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

DS-Ni-HITP-3 min/ITO electrode · Electrode · 5.0 mM K3[Fe(CN)6] containing 0.1 M KCl; scan-rate dependent CV; effective catalytic activity surface area calculated from Ip-v^1/2 slope.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and Randles-Sevcik analysis

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

bare ITO · Electrode · 5.0 mM K3[Fe(CN)6] containing 0.1 M KCl; scan-rate dependent CV.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and Randles-Sevcik analysis

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

US-Ni-HITP-3 min/ITO electrode · Electrode · 5.0 mM K3[Fe(CN)6] containing 0.1 M KCl; scan-rate dependent CV; effective catalytic activity surface area calculated from Ip-v^1/2 slope.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose calibration

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

US-Ni-HITP-1 min/ITO electrode · Electrode · SI comparison of US-Ni-HITP-1 min/ITO and DS-Ni-HITP-1 min/ITO in different glucose concentrations; calibration of oxidation peak current versus glucose concentration.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose calibration

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

US-Ni-HITP-5 min/ITO electrode · Electrode · SI comparison of US-Ni-HITP-5 min/ITO and DS-Ni-HITP-5 min/ITO in different glucose concentrations; calibration of oxidation peak current versus glucose concentration.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose sensing

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

DS-Ni-HITP-3 min/ITO electrode · Electrode · 0.1 M NaOH, 0.2-0.8 V vs Ag/AgCl, 50 mV s^-1; glucose concentrations 0-6 mM for linear calibration.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose sensing control

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

bare ITO · Electrode · 0.1 M NaOH with absence and presence of 2 mM glucose.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose sensing

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

US-Ni-HITP-3 min/ITO electrode · Electrode · 0.1 M NaOH, 0.2-0.8 V vs Ag/AgCl, 50 mV s^-1; glucose concentrations 0-8 mM.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate dependent cyclic voltammetry

2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing

DS-Ni-HITP-3 min/ITO electrode · Electrode · DS-Ni-HITP film in 2 mM glucose at scan rates from 20 to 200 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance and ECSA from non-faradaic CV

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Cu-doped Sr MOF OER glassy-carbon electrode · Electrode · CV scan rates 10-100 mV s-1 in non-faradaic potential range 1.09-1.19 V; Cs assumed 0.04 mF cm-2.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance and ECSA from non-faradaic CV

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Undoped Sr MOF OER glassy-carbon electrode · Electrode · CV scan rates 10-100 mV s-1 in non-faradaic potential range 1.09-1.19 V for undoped Sr MOF; Cs assumed 0.04 mF cm-2.

Electrochemistry ApplicationLinear sweep

LSV durability comparison before and after cycling

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Cu-doped Sr MOF OER glassy-carbon electrode · Electrode · OER LSV curves before and after 2000 cycles of a stability test; blue initial curve and red dotted post-cycling curve.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry and Tafel analysis

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Cu-doped Sr MOF OER glassy-carbon electrode · Electrode · 1 M KOH, scan rate 5 mV s-1, iR-corrected; overpotential at 10 mA cm-2 and Tafel slope compared with undoped Sr MOF.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry and Tafel analysis

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Undoped Sr MOF OER glassy-carbon electrode · Electrode · 1 M KOH, scan rate 5 mV s-1, iR-corrected; undoped Sr MOF overpotential at 10 mA cm-2 and Tafel slope.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and Dunn capacitive/diffusion analysis

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Cu-doped Sr MOF/Ni foam supercapacitor electrode · Electrode · Three-electrode setup in 3 M KOH; Ag/AgCl reference, Pt counter; CV from -0.1 to 0.45 V, scan rates 5-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and Dunn capacitive/diffusion analysis

2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction

Undoped Sr MOF/Ni foam supercapacitor electrode · Electrode · Three-electrode setup in 3 M KOH; undoped Sr MOF/Ni foam electrode CV at scan rates 5-100 mV s-1, with Dunn capacitive/diffusion contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry for double-layer capacitance

2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance

Cu-MOF drop-coated glassy carbon electrode · Electrode · CV scan rates from 20 to 100 mV s-1 in 1 M KOH; Cdl from current-density difference versus scan rate.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance

Cu-MOF drop-coated glassy carbon electrode · Electrode · Three-electrode system in 1 M KOH; Pt sheet counter electrode; saturated Ag/AgCl reference; MOF/GCE working electrode; LSV scan rate 2 mV s-1; potentials reported vs RHE.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry for double-layer capacitance

2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance

Fe-MOF drop-coated glassy carbon electrode · Electrode · CV scan rates from 20 to 100 mV s-1 in 1 M KOH; Cdl from current-density difference versus scan rate.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance

Fe-MOF drop-coated glassy carbon electrode · Electrode · Three-electrode system in 1 M KOH; Pt sheet counter electrode; saturated Ag/AgCl reference; MOF/GCE working electrode; LSV scan rate 2 mV s-1; potentials reported vs RHE.

Electrochemistry ApplicationCyclic voltammetry

two-electrode ZHS CV and GCD

2024 · De Novo Design and Facile Synthesis of Highly Crystalline 2D Conductive Metal-Organic Frameworks: A “Rotor-Stator” Strategy

Cu-DCB-MOF composite cathode electrode for ZHS · Electrode · 2032 coin cell, zinc metal foil//glass fibre//Cu-DCB-MOF cathode in 2 M Zn(CH3COO)2; CV 0.7-1.2 V, scan rates 1-10 mV s-1; GCD at 0.05-10 A g-1.

Electrochemistry ApplicationCyclic voltammetry

CV optimisation of Cu3(HHTP)2 loading

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

Cu3(HHTP)2/SPE · Electrode · AA oxidation current compared for Cu3(HHTP)2 dispersion concentrations of 1, 2, 4, and 8 mg/mL on SPE; bar heights read from SI Figure S3.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

bare SPE · Electrode · Bare SPE control in AA under the same CV comparison; 0.1 mol/L PBS and 100 mV/s reported for CV tests.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

Cu3(HHTP)2/SPE · Electrode · 0.1 mol/L PBS; CV range -1 to 1 V; scan rate 100 mV/s; with or without 1 mM AA; optimised at pH 6 and 4 mg/mL Cu3(HHTP)2.

Sensing ApplicationDifferential pulse

differential pulse voltammetry (DPV)

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

Cu3(HHTP)2/SPE · Electrode · 0.1 mol/L PBS; DPV range -1 to 1 V; potential increment 0.005 V; pulse amplitude 0.05 V; pulse width 0.3 s; AA concentration range 25-1645 umol/L.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate dependence

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

Cu3(HHTP)2/SPE · Electrode · CV tests at different scan rates; Figure 3c visually spans 20-180 mV/s and Figure 3d plots peak current versus v^1/2.

Sensing ApplicationDifferential pulse

DPV interference/selectivity test

2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors

Cu3(HHTP)2/SPE · Electrode · 200 uM AA with 2 mM KCl, Glu, Gly, and CA, respectively; interferences are 10-times AA concentration.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Diamagnetic Carrier-Doping-Induced Continuous Electronic and Magnetic Crossover in One-Dimensional Coordination Polymers

L4- ligand CV sample · Model · Comparison of L4- ligand with TTF reference.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Diffusional Electron Transport Coupled to Thermodynamically Driven Electron Transfers in Redox-Conductive Multivariate Metal-Organic Frameworks

Zn(NDI) thin film on FTO · Thin Film · MOF@FTO working electrode; Ar-saturated DMF with 0.1 M KPF6; scan rates 50 mV s-1 in Figure 2 and 10 mV s-1 for integration in SI.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Diffusional Electron Transport Coupled to Thermodynamically Driven Electron Transfers in Redox-Conductive Multivariate Metal-Organic Frameworks

Zn(NDI)0.2(PMDI)0.8 thin film on FTO · Thin Film · MOF@FTO working electrode; Ar-saturated DMF with 0.1 M KPF6; scan rates 50 mV s-1 in Figure 2 and 10 mV s-1 for integration in SI.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Diffusional Electron Transport Coupled to Thermodynamically Driven Electron Transfers in Redox-Conductive Multivariate Metal-Organic Frameworks

Zn(NDI)0.5(PMDI)0.5 thin film on FTO · Thin Film · MOF@FTO working electrode; Ar-saturated DMF with 0.1 M KPF6; scan rates 50 mV s-1 in Figure 2 and 10 mV s-1 for integration in SI.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Diffusional Electron Transport Coupled to Thermodynamically Driven Electron Transfers in Redox-Conductive Multivariate Metal-Organic Frameworks

Zn(NDI)0.8(PMDI)0.2 thin film on FTO · Thin Film · MOF@FTO working electrode; Ar-saturated DMF with 0.1 M KPF6; scan rates 50 mV s-1 in Figure 2 and 10 mV s-1 for integration in SI.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Diffusional Electron Transport Coupled to Thermodynamically Driven Electron Transfers in Redox-Conductive Multivariate Metal-Organic Frameworks

Zn(PMDI) thin film on FTO · Thin Film · MOF@FTO working electrode; Ar-saturated DMF with 0.1 M KPF6; scan rates 50 mV s-1 in Figure 2 and 10 mV s-1 for integration in SI.

Electrochemistry ApplicationCyclic voltammetry

CV and EIS of bare Pt/Pt interdigitated control

2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration

Bare Pt/Pt interdigitated microelectrode · Electrode · Bare and Ni3(HITP)2-coated microelectrodes compared; CV at 5 V s-1, 0-1 V in 1.0 M KOH; EIS 1 Hz to 200 kHz, 5 mV amplitude.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of Ni3(HITP)2 electrolytic bath

2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration

Potentiostatic Ni3(HITP)2 film from H2O-DMF-DMA bath · Thin Film · H2O-DMF-DMA mixed-solvent bath, scan rate 10 mV s-1 vs Ag wire; cycles 1-5 shown.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of individual bath constituents and combined Ni3(HITP)2 precursor bath

2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration

Ni3(HITP)2 deposits on ITO from cyclic-voltammetry electrodeposition · Thin Film · ITO working electrode, scan rate 10 mV s-1, potential window -0.5 to 1.0 V vs Ag pseudo-reference; MeOH-DMSO component screening in glovebox.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode cyclic voltammetry of Ni3(HITP)2 micro-supercapacitor

2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration

Ni3(HITP)2-coated Pt/Pt interdigitated micro-supercapacitor · Electrode · 1.0 M KOH aqueous electrolyte; voltage windows 0-0.5 V, 0-0.8 V and 0-1.0 V depending on test; scan rates 1-20 V s-1 in SI methods, main data show 1, 2, 5 and 10 V s-1.

Electrochemistry ApplicationCyclic voltammetry

Cycling stability by cyclic voltammetry

2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration

Ni3(HITP)2-coated Pt/Pt interdigitated micro-supercapacitor · Electrode · 1000 CV cycles at 5 V s-1 in voltage windows 0-0.5 V and 0-0.8 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for double-layer capacitance (Cdl)

2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework

Co3O4 control catalyst ink on conductive carbon paper · Electrode · CVs recorded at scan rates from 25 to 200 mV s-1 to estimate electrochemically active surface area.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for double-layer capacitance (Cdl)

2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework

Co-BTB catalyst ink on conductive carbon paper · Electrode · CVs recorded at scan rates from 25 to 200 mV s-1 to estimate electrochemically active surface area.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework

Co3O4 control catalyst ink on conductive carbon paper · Electrode · Co3O4 control electrode measured under identical 1 M KOH conditions.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework

Co-BTB catalyst ink on conductive carbon paper · Electrode · Three-electrode cell in 1 M KOH; saturated Ag/AgCl reference electrode, graphite rod counter electrode, carbon-paper working electrode.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework

IrO2 benchmark electrode · Electrode · Benchmark IrO2 electrode measured under identical 1 M KOH conditions.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks

Bu-MOF 9:1 c-MOF/carbon electrode · Electrode · Three-electrode Swagelok cell; c-MOF/conductive carbon 9:1 on Ni foam; activated carbon counter; Ag-wire pseudo-reference; 1 M LiTFSI in ACN; capacitance from CV scans.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks

Et-MOF 9:1 c-MOF/carbon electrode · Electrode · Three-electrode Swagelok cell; c-MOF/conductive carbon 9:1 on Ni foam; activated carbon counter; Ag-wire pseudo-reference; 1 M LiTFSI in ACN; capacitance from CV scans.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks

H-MOF 9:1 c-MOF/carbon electrode · Electrode · Three-electrode Swagelok cell; c-MOF/conductive carbon 9:1 on Ni foam; activated carbon counter; Ag-wire pseudo-reference; 1 M LiTFSI in ACN; capacitance from CV scans.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks

Pent-MOF 9:1 c-MOF/carbon electrode · Electrode · Three-electrode Swagelok cell; c-MOF/conductive carbon 9:1 on Ni foam; activated carbon counter; Ag-wire pseudo-reference; 1 M LiTFSI in ACN; capacitance from CV scans.

Electrochemistry ApplicationCyclic voltammetry

extended-window cyclic voltammetry

2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks

H-/Et-/Bu-/Pent-MOF electrochemical electrode series · Electrode · CV sweeps from 0.2 to -0.4 V at 5 mV/s compared for H-, Et-, Bu-, and Pent-MOF electrodes.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, three-electrode

2024 · Electrochemical investigation of copper 1D conductive polymer for hybrid supercapacitor applications

Cu-PDA-MOF working electrode on nickel foam · Electrode · Origalys/OrigaFlex workstation; 1 M KOH electrolyte; scan rates 5-40 mV/s; potential window 0-0.7 V vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.1Cu0.9(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Cu3(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni1.6Cu1.4(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.1Cu0.9(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.3Cu0.7(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance and ECSA calculation

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni3(HITP)2 film on carbon cloth · Electrode · CV scan rates from 10 to 50 mV s-1; Cdl from DeltaJ slope; ECSA calculated assuming 40 uF cm-2 plane capacitance.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.1Cu0.9(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Cu3(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni1.6Cu1.4(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.1Cu0.9(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni2.3Cu0.7(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH

2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries

Ni3(HITP)2 film on carbon cloth · Electrode · Three-electrode ORR testing at room temperature; M3(HITP)2/carbon cloth working electrode, SCE reference, carbon rod counter, 5 mV s-1 scan, potentials vs RHE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for gravimetric capacitance

2024 · Electrosynthesis of a Nickel-Based Conductive Metal-Organic Framework with Controlled Morphology for Enhanced Capacitance

Ni-HHTP comparative sample set · Unknown · Three-electrode cell with degassed 0.1 M TEBF4 in acetonitrile, nonaqueous Ag/Ag+ reference and Pt counter electrode; capacitance compared at 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cycling stability cyclic voltammetry

2024 · Electrosynthesis of a Nickel-Based Conductive Metal-Organic Framework with Controlled Morphology for Enhanced Capacitance

Ni-HHTP comparative sample set · Unknown · Ni-HHTP-Flower and Ni-HHTP-Disc cycled up to 100 cycles in 0.1 M TEBF4 in acetonitrile.

Electrochemistry ApplicationCyclic voltammetry

Activated-carbon anode CV/GCD supporting curves

2024 · Fabrication of high-performance supercapacitor of surface-engineered ZIF-8 for energy storage applications

Ag@ZIF-8/AC hybrid supercapacitor · Electrode · AC anode supporting data: CV at 20 mV s-1 and GCD at 1 A g-1 current density from SI Fig. S1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2024 · Fabrication of high-performance supercapacitor of surface-engineered ZIF-8 for energy storage applications

2-Ag@ZIF-8/Ni foam working electrode · Electrode · 3 M KOH electrolyte; comparison at 10 mV s-1 and scan-rate series from 10 to 100 mV s-1 shown in Fig. 5.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2024 · Glucose sensing performance of bimetallic MOFs CoFe-ZIF/CC for enzyme-free saliva sensor applications

Co0.95Fe0.05-ZIF/CC/GCE electrode · Electrode · 0.10 M NaOH electrolyte, 0.00-0.60 V, room temperature, three-electrode cell with GCE working electrode, Pt counter, Ag/AgCl reference; scan rate 20 mV s-1 for comparison in absence/presence of 500 uM glucose.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate dependence

2024 · Glucose sensing performance of bimetallic MOFs CoFe-ZIF/CC for enzyme-free saliva sensor applications

Co0.95Fe0.05-ZIF/CC/GCE electrode · Electrode · Co0.95Fe0.05-ZIF/CC/GCE CV curves at scan rates 10, 20, 30, 40, 60 and 80 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD

2024 · High-performance hybrid supercapacitors enabled by CoTe@CoFeTe double-shelled nanocubes

Activated carbon electrode · Electrode · Activated carbon electrode tested from 1 to 54 A g-1 and 10 to 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD, three-electrode cell

2024 · High-performance hybrid supercapacitors enabled by CoTe@CoFeTe double-shelled nanocubes

control electrodes on nickel foam · Electrode · 6 M KOH; Hg/HgO reference; Pt foil counter; active material/acetylene black/PTFE 8:1:1 on nickel foam; 4.0 mg loading.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD, three-electrode cell

2024 · High-performance hybrid supercapacitors enabled by CoTe@CoFeTe double-shelled nanocubes

CoTe@CoFeTe working electrode · Electrode · 6 M KOH; Hg/HgO reference; Pt foil counter; CoTe@CoFeTe electrode on nickel foam.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · In-situ growth of electrically conductive MOFs in wood cellulose scaffold for flexible, robust and hydrophobic membranes with improved electrochemical performance

50%-NiCAT@TOW membrane · Thin Film · Three-electrode setup in aqueous 3 M KCl; Ag/AgCl reference and Pt counter; 0 to 0.5 V voltage window; scan rates 5-200 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Laccase-inspired bi-amino acid MOFs with high substrate affinity: Catalytic deposition induced “signal-down” electrochemical response towards PD-L1

PD-L1 sandwich sensor on gold electrode · Electrode · CV curves of step-by-step sensor construction and signal amplification.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Layered coordination polymer with two-dimensional covalent bismuth-organic networks: Semiconductor and lithium ion storage

Bi-DSBDC-DMA composite electrode · Electrode · BioLogic electrochemical workstation; 0.1 to 3.0 V vs Li+/Li; scan rate 0.1 mV/s.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from scan-rate dependent CV

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

Cu-EP/Super P/PTFE modified glassy carbon electrode · Electrode · 100-500 mV/s in 0.40-0.45 V versus Ag/Ag+ non-faradaic window in 1 M Na2CO3

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry capacitance

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

Cu-EP/Super P/PTFE modified glassy carbon electrode · Electrode · 1 M aqueous Na2CO3; modified GCE; Ag/Ag+ reference; Pt counter; scan rate 10 mV/s for main CV

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from scan-rate dependent CV

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

Cu-HHTC/Super P/PTFE modified glassy carbon electrode · Electrode · 100-500 mV/s in 0.40-0.45 V versus Ag/Ag+ non-faradaic window in 1 M Na2CO3

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry capacitance

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

Cu-HHTC/Super P/PTFE modified glassy carbon electrode · Electrode · 1 M aqueous Na2CO3; modified GCE; Ag/Ag+ reference; Pt counter; scan rate 10 mV/s for main CV

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Co-Try MOF graphite paste electrode · Electrode · Single-metal MOF comparator CV over 0.01-0.5 V/s in SI; main Fig. 11 compares 0.01 V/s traces with mixed-metal MOFs.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Try MOF graphite paste electrode (E) · Electrode · 0.1 N HCl; scan rates 0.01-0.5 V s^-1; potential window -0.15 to 0.6 V; Pt counter; Ag reference

Electrical TransportCyclic voltammetry

CV-derived charge mobility calculation

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Try MOF graphite paste electrode (E) · Electrode · Mobility calculated from diffusion coefficient and Randles-Sevcik relation; below 0.1 cm^2 V^-1 s^-1 interpreted as hopping transport

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Er-Try MOF graphite paste electrode · Electrode · Single-metal MOF comparator CV over 0.01-0.5 V/s in SI; main Fig. 11 compares 0.01 V/s traces with mixed-metal MOFs.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Co-Try MOF graphite paste electrode (P1) · Electrode · 0.1 N HCl; scan rates 0.01-0.5 V s^-1; potential window -0.15 to 0.6 V; Pt counter; Ag reference

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Co-Try MOF graphite paste electrode (P1) · Electrode · 1 M KOH according to text; room temperature; scan rate 5 mV s^-1

Electrical TransportCyclic voltammetry

CV-derived charge mobility calculation

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Co-Try MOF graphite paste electrode (P1) · Electrode · Mobility calculated from diffusion coefficient and Randles-Sevcik relation; below 0.1 cm^2 V^-1 s^-1 interpreted as hopping transport

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Co-Try MOF graphite paste electrode (P1) · Electrode · 0.1 M KOH according to Fig. 12 caption; scan rate 5 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Zn-Try MOF graphite paste electrode (P2) · Electrode · 0.1 N HCl; scan rates 0.01-0.5 V s^-1; potential window -0.15 to 0.6 V; Pt counter; Ag reference

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Zn-Try MOF graphite paste electrode (P2) · Electrode · 1 M KOH according to text; room temperature; scan rate 5 mV s^-1

Electrical TransportCyclic voltammetry

CV-derived charge mobility calculation

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Zn-Try MOF graphite paste electrode (P2) · Electrode · Mobility calculated from diffusion coefficient and Randles-Sevcik relation; below 0.1 cm^2 V^-1 s^-1 interpreted as hopping transport

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Zn-Try MOF graphite paste electrode (P2) · Electrode · 0.1 M KOH according to Fig. 12 caption; scan rate 5 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Er-Try MOF graphite paste electrode (P3) · Electrode · 0.1 N HCl; scan rates 0.01-0.5 V s^-1; potential window -0.15 to 0.6 V; Pt counter; Ag reference

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Er-Try MOF graphite paste electrode (P3) · Electrode · 1 M KOH according to text; room temperature; scan rate 5 mV s^-1

Electrical TransportCyclic voltammetry

CV-derived charge mobility calculation

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Er-Try MOF graphite paste electrode (P3) · Electrode · Mobility calculated from diffusion coefficient and Randles-Sevcik relation; below 0.1 cm^2 V^-1 s^-1 interpreted as hopping transport

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Er-Try MOF graphite paste electrode (P3) · Electrode · 0.1 M KOH according to Fig. 12 caption; scan rate 5 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Yb-Try MOF graphite paste electrode (P4) · Electrode · 0.1 N HCl; scan rates 0.01-0.5 V s^-1; potential window -0.15 to 0.6 V; Pt counter; Ag reference

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Yb-Try MOF graphite paste electrode (P4) · Electrode · 1 M KOH according to text; room temperature; scan rate 5 mV s^-1

Electrical TransportCyclic voltammetry

CV-derived charge mobility calculation

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Yb-Try MOF graphite paste electrode (P4) · Electrode · Mobility calculated from diffusion coefficient and Randles-Sevcik relation; below 0.1 cm^2 V^-1 s^-1 interpreted as hopping transport

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Cu-Yb-Try MOF graphite paste electrode (P4) · Electrode · 0.1 M KOH according to Fig. 12 caption; scan rate 5 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Thermally treated P1-P4 MOF set · Electrode · As-synthesised P1-P4 compared with samples thermally treated at 280 C and 580 C; potential window -0.1 to 1.2 V

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Yb-Try MOF graphite paste electrode · Electrode · Single-metal MOF comparator CV over 0.01-0.5 V/s in SI; main Fig. 11 compares 0.01 V/s traces with mixed-metal MOFs.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance

Zn-Try MOF graphite paste electrode · Electrode · Single-metal MOF comparator CV over 0.01-0.5 V/s in SI; main Fig. 11 compares 0.01 V/s traces with mixed-metal MOFs.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV/GCD/EIS in 1 M KCl

2024 · Molecular-Level Pore Tuning in 2D Conductive Metal-Organic Frameworks for Advanced Supercapacitor Performance

Free-standing Cu3(HHTATP)2 composite electrode · Electrode · Free-standing composite working electrode, Pt counter, Ag/AgCl reference; 25 C; CV -0.4 to 0.5 V at 1-100 mV s-1; GCD 0.2-8 A g-1; EIS 10 mHz-100 kHz, 10 mV AC.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode GCD/CV/EIS in 1 M KCl

2024 · Molecular-Level Pore Tuning in 2D Conductive Metal-Organic Frameworks for Advanced Supercapacitor Performance

Free-standing Cu3(HHTP)2 composite electrode control · Electrode · Same electrolyte and electrode geometry as target; used as control.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS for benzoic-acid series

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

Benzoic Acid-80 · Electrode · Benzoic acid-60/80/100 comparison, including rate capability and ESR.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS for H2BDC series

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

H2BDC-80 · Electrode · H2BDC-60/80/100 comparison, including maximum areal capacity, rate capability and ESR.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS for H3BTC series

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

H3BTC-100 · Electrode · H3BTC-60/80/100 comparison, including maximum specific capacity, rate capability and ESR.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode HSC CV, GCD, EIS, Ragone and cycling

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

H2BDC-80//3D NCF/Cu hybrid supercapacitor · Unknown · 2 M KOH; positive H2BDC-80 electrode and 3D NCF/Cu negative electrode; potential window optimised to 1.54 V.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode setup

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

Benzoic Acid-80 · Electrode · 2 M KOH electrolyte; as-synthesised electrode working, Pt plate counter, Hg/HgO reference; CV -0.1 to 0.6 V.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode setup

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

H2BDC-80 · Electrode · 2 M KOH electrolyte; as-synthesised electrode working, Pt plate counter, Hg/HgO reference; CV -0.1 to 0.6 V.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode setup

2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors

H3BTC-100 · Electrode · 2 M KOH electrolyte; as-synthesised electrode working, Pt plate counter, Hg/HgO reference; CV -0.1 to 0.6 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode

2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids

Q1 Cu-MOF composite working electrode · Electrode · 1 M KOH electrolyte; potential range 0-0.7 V vs Hg/HgO; room temperature; scan rates 3-50 mV s^-1 shown.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode

2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids

Q2 Cu-MOF composite working electrode · Electrode · 1 M KOH electrolyte; potential range 0-0.7 V vs Hg/HgO; room temperature; scan rates 3-50 mV s^-1 shown.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), SI bare Ni-foam control

2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids

bare nickel foam current collector · Electrode · Q2 electrode and bare Ni-foam compared at 3 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), asymmetric device

2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids

Q2 Cu-MOF//activated carbon hybrid device · Electrode · Potential sweep rates 3-100 mV s^-1; operational device window 0-1.7 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for benzyl alcohol oxidation

2024 · Multimetallic Prussian Blue Analogue Nanoparticles for Oxygen Evolution Reaction and Efficient Benzyl Alcohol Oxidation

MnFeCoNiCu-PBA@carbon cloth working electrode · Electrode · 1.0 M aqueous KOH with 0.1 M benzyl alcohol, pH 13.8, three-electrode cell, 70% iR correction

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2024 · Multimetallic Prussian Blue Analogue Nanoparticles for Oxygen Evolution Reaction and Efficient Benzyl Alcohol Oxidation

MnFeCoNiCu-PBA@carbon cloth working electrode · Electrode · 1.0 M aqueous KOH, pH 13.8, three-electrode cell, 70% iR correction; PBA@CC working electrode, graphite carbon rod counter electrode, Ag/AgCl reference

Electrical TransportCyclic voltammetryLinear sweep

photocurrent, EIS, LSV, CV, and Mott-Schottky electrochemical analysis

2024 · NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation

NCCG-15 · Powder · electrochemical workstation VersaSTAT4-400; comparative curves for CG, NC, and NCCG-15

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2024 · Novel 2D CuFe-MOF-based immunoprobe: Addressing antifouling electrochemical immunosensing inadequate sensitivity challenge

GCE-Gel-Ab1-Antigen-Probe immunosensor · Electrode · 10 mM PBS including 0.1 M KCl, pH 7.4; sequential GCE, GCE-Gel, GCE-Gel-Ab1, GCE-Gel-Ab1-Antigen, GCE-Gel-Ab1-Antigen-Probe.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry effective-area analysis

2024 · Novel 2D CuFe-MOF-based immunoprobe: Addressing antifouling electrochemical immunosensing inadequate sensitivity challenge

2D CuFe-MOF · Nanosheet · Scan rates 10-500 mV s-1 in 1 mM K3[Fe(CN)6] containing 0.1 M KCl; Randles-Sevcik equation.

Sensing ApplicationSquare wave

SWV reproducibility, stability and specificity tests

2024 · Novel 2D CuFe-MOF-based immunoprobe: Addressing antifouling electrochemical immunosensing inadequate sensitivity challenge

GCE-Gel-Ab1-Antigen-Probe immunosensor · Electrode · Five same-batch electrodes; weekly stability for 7 weeks; interferents CA19-9, IgG, PSA, CEA and NSE.

Sensing ApplicationSquare wave

Square wave voltammetry (SWV)

2024 · Novel 2D CuFe-MOF-based immunoprobe: Addressing antifouling electrochemical immunosensing inadequate sensitivity challenge

GCE-Gel-Ab1-Antigen-Probe immunosensor · Electrode · SWV from -0.5 to 0 V versus Ag/AgCl after SCCA immunorecognition and H2O2 cascade reaction.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Novel electrochemical sensing strategy for ultrasensitive detection of tetracycline based on porphyrin/metal phthalocyanine-covalent organic framework

TC/Apt/CuTAPc-TFPP-COF/GCE · Electrode · CV comparison for fabrication stages under the same electrolyte conditions as Fig. 4.

Electrochemistry ApplicationCyclic voltammetry

EIS and cyclic voltammetry on CHI 660E workstation

2024 · Novel electrochemical sensing strategy for ultrasensitive detection of tetracycline based on porphyrin/metal phthalocyanine-covalent organic framework

Apt/CuTAPc-TFPP-COF/GCE · Electrode · Three-electrode system with modified GCE working electrode, Ag/AgCl reference, Pt counter. EIS in phosphate buffer with 5 mM [Fe(CN)6]3-/4-, 0.14 M NaCl, 0.1 M KCl at 0.21 V, 100 kHz to 0.1 Hz, 5 mV amplitude. CV from -0.2 to 0.8 V at 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Ordered layered manganese-based metal–organic frameworks induce 2D growth of discharge products via LiO2 adsorbent for high performance lithium–oxygen batteries

Mn-MOF-140 C air cathode · Electrode · LOB air electrode working electrode, lithium foil auxiliary/reference, 2.0-4.5 V window, scan rate 0.1 mV/s

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV) and Tafel analysis

2024 · Ordered layered manganese-based metal–organic frameworks induce 2D growth of discharge products via LiO2 adsorbent for high performance lithium–oxygen batteries

Mn-MOF-140 C air cathode · Electrode · standard three-electrode system in 1 M KOH alkaline conditions

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge in symmetric two-electrode cells

2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors

binder-free Ni3(HITP)2 MOF pellet electrode · Electrode · Two-electrode Ar-glovebox cell; Biologic VMP-3e; pure [Bmim][PF6] and [Bmim][PF6]/ACN electrolytes; CV scan rates 50, 20, 10, 5 mV s-1; GCD current densities 2, 1, 0.5, 0.1 A g-1.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetic analysis

2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors

NCSC working electrode · Electrode · CV scan rates 5-100 mV s-1; log(i) versus log(v) b-value analysis and capacitive contribution fitting.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode cell

2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors

NCO working electrode · Electrode · 6 M KOH aqueous electrolyte; Hg/HgO reference; Pt counter; potential window 0-0.5 V.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode cell

2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors

NCS working electrode · Electrode · 6 M KOH aqueous electrolyte; Hg/HgO reference; Pt counter; potential window 0-0.5 V.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in three-electrode cell

2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors

NCSC working electrode · Electrode · 6 M KOH aqueous electrolyte; Hg/HgO reference; Pt counter; potential window 0-0.5 V; active-material loading 1 mg cm-2.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry, oxidation side

2024 · Reaction-Type-Dependent Behavior of Redox-Hopping in MOFs─Does Charge Transport Have a Preferred Direction?

Ru-NU-1000 film on FTO · Electrode · 0.1 M TBAPF6 in acetonitrile; scan from open circuit to 2.0 V vs Ag/AgNO3; period 30 ms, width 50 ms, height 50 mV, increment 5 mV.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry, reduction side

2024 · Reaction-Type-Dependent Behavior of Redox-Hopping in MOFs─Does Charge Transport Have a Preferred Direction?

Ru-NU-1000 film on FTO · Electrode · 0.1 M TBAPF6 in acetonitrile; scan from open circuit to -2.2 V vs Ag/AgNO3; period 30 ms, width 50 ms, height 50 mV, increment 5 mV.

Electrochemistry ApplicationCyclic voltammetryDifferential pulse

CV/DPV control comparison of blank FTO, pristine NU-1000, and Ru-NU-1000

2024 · Reaction-Type-Dependent Behavior of Redox-Hopping in MOFs─Does Charge Transport Have a Preferred Direction?

Pristine NU-1000 electrochemical control on FTO · Electrode · 0.1 M TBAPF6 in acetonitrile; CV scan rate 100 mV/s; DPV period 30 ms, width 50 ms, height 50 mV, increment 5 mV.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of molecular Ru complex

2024 · Reaction-Type-Dependent Behavior of Redox-Hopping in MOFs─Does Charge Transport Have a Preferred Direction?

[RuII(bpy)2(bpy-COOH)](PF6)2 homogeneous solution · Model · Glassy carbon working electrode, Pt wire counter electrode, non-aqueous Ag/AgNO3 reference; 0.1 M TBAPF6 in acetonitrile; scan rate 100 mV/s; potentials converted to Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

Dunn method CV scan-rate analysis

2024 · Redox-active conductive metal-organic framework with high lithium capacities at low temperatures

SKIER-5/Super P/PVDF electrode · Electrode · CV profiles from 0.1 to 1.0 mV s^-1; log(i) versus log(v); capacitive and diffusion-controlled contribution separation

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in CR2032 Li half-cell

2024 · Redox-active conductive metal-organic framework with high lithium capacities at low temperatures

SKIER-5/Super P/PVDF electrode · Electrode · 1.0 M LiPF6 in EC/DMC 1:1; Li foil counter/reference; 0.01-3.0 V vs Li/Li+; 0.1 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance and ECSA

2024 · Regulating Electronic Structure of Bimetallic NiFe-THQ Conductive Metal–Organic Frameworks to Boost Catalytic Activity for Oxygen Evolution Reaction

NixFe1-x-THQ series · Powder · CV in non-Faradaic region 1.223-1.323 V vs RHE at 5, 10, 15, 20, 25 mV s-1; Cs defined as 0.04 mF cm-2.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2024 · Regulating Electronic Structure of Bimetallic NiFe-THQ Conductive Metal–Organic Frameworks to Boost Catalytic Activity for Oxygen Evolution Reaction

NixFe1-x-THQ series · Powder · 1.0 M KOH, three-electrode cell, no iR compensation, LSV scan rate 5 mV s-1; catalyst ink on glassy carbon electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of asymmetric cell

2024 · Revealing the effect of cobalt content and ligand exchange in the bimetallic Ni–Co MOF for stable supercapacitors with high energy density

KNiCoPO4//AC asymmetric supercapacitor · Electrode · KNiCoPO4//AC cell in 2 M NaOH; 0-1.45 V; 1-10 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Revealing the effect of cobalt content and ligand exchange in the bimetallic Ni–Co MOF for stable supercapacitors with high energy density

KNiCoPO4 working electrode · Electrode · Three-electrode cell, 2 M NaOH, 0-0.45 V, scan-rate series

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Revealing the effect of cobalt content and ligand exchange in the bimetallic Ni–Co MOF for stable supercapacitors with high energy density

MOF-based working electrode comparison series · Electrode · Three-electrode cell, 2 M NaOH, 0-0.45 V vs Ag/AgCl; representative comparative scan at 0.5 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and charge-discharge testing

2024 · Reversible Molecule Interactions Enable Ultrastretchable and Recyclable Ionogels for Wearable Piezoionic Sensors

ionogel-based flexible strain sensor · Electrode · Electrochemical testing on CHI660 workstation; detailed traces in SI Figures S7-S8.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units

Ni3(HITP)2 CV electrode on carbon fibre paper · Electrode · Ni3(HITP)2 ink on CFP; tetraethylammonium hexafluorophosphate in acetonitrile; scan rate 10 mV/s; N2 and CO2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units

Ni(DIB)2 solution electrochemical control · Unknown · 2 mM Ni(DIB)2 in DMF with TBAPF6; three-electrode gastight cell; scan rate 100 mV/s; N2 and CO2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Co3O4 · Nanosheet · three-electrode cell in 3 M KOH at different sweep rates

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Co(OH)2 · Nanosheet · three-electrode cell in 3 M KOH at different sweep rates

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

CoP · Nanosheet · three-electrode cell in 3 M KOH at different sweep rates

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Ni-HHTP@Co3O4 · Electrode · three-electrode cell in 3 M KOH; scan rates 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Ni-HHTP@Co(OH)2 · Electrode · three-electrode cell in 3 M KOH; scan rates 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Ni-HHTP@CoP · Electrode · three-electrode cell in 3 M KOH; scan rates 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

GCD and CV of asymmetric supercapacitor

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Ni-HHTP@Co(OH)2//AC · Electrode · Ni-HHTP@Co(OH)2//AC device in 3 M KOH; 0-1.2 V CV; current densities 0.5-5.0 A g-1

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis

2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance

Ni-HHTP@Co(OH)2 · Electrode · b-value and capacitive/diffusive contribution analysis from CV curves at 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework

Co-MOF/Ni foam supercapacitor electrode · Electrode · Three-electrode system in 2 M KOH; Ag/AgCl reference, Pt counter, Ni foam working electrode; -0.1 to 0.5 V; scan rates 10-100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework

CoCu-MOF/Ni foam supercapacitor electrode · Electrode · Three-electrode system in 2 M KOH; Ag/AgCl reference, Pt counter, Ni foam working electrode; -0.1 to 0.5 V; scan rates 10-100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework

Cu-MOF/Ni foam supercapacitor electrode · Electrode · Three-electrode system in 2 M KOH; Ag/AgCl reference, Pt counter, Ni foam working electrode; -0.1 to 0.5 V; scan rates 10-100 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Synthesis and structure of anhydrous Zn2EDTA metal-organic framework

Zn2EDTA(H2O) comparison electrode · Electrode · Comparison CV in saturated NaClO4 at 10 mV/s, shown in Fig. 5b with Zn2EDTA(H2O) curve.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Synthesis and structure of anhydrous Zn2EDTA metal-organic framework

Zn2EDTA(H2O) comparison electrode · Electrode · Comparison CV in 1 M NaOH at 10 mV/s, shown in Fig. 5a with Zn2EDTA(H2O) curve.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Synthesis and structure of anhydrous Zn2EDTA metal-organic framework

Zn2EDTA composite electrode on graphite foil · Electrode · Neutral saturated NaClO4 electrolyte, potential range -1.8 to -0.2 V, sweep rate 10 mV/s; three-electrode cell.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Synthesis and structure of anhydrous Zn2EDTA metal-organic framework

Zn2EDTA composite electrode on graphite foil · Electrode · Biologic SP-300 potentiostat-galvanostat; three-electrode cell; 1 M NaOH aqueous electrolyte; 10 mV/s sweep; Ag/AgCl (3.5 M KCl) reference; carbon cloth auxiliary.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry-derived double-layer capacitance

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Co100-2xNixFex MOF-74 composition series · Powder · CV scans at 10, 20, 40, 60, 80 and 100 mV s-1; slope of current density versus scan rate used as Cdl/ECSA proxy.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry-derived double-layer capacitance

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Fe100-2xNixCox MOF-74 composition series · Powder · CV scans at 10, 20, 40, 60, 80 and 100 mV s-1; slope of current density versus scan rate used as Cdl/ECSA proxy.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry-derived double-layer capacitance

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Ni100-2xCoxFex MOF-74 composition series · Powder · CV scans at 10, 20, 40, 60, 80 and 100 mV s-1; slope of current density versus scan rate used as Cdl/ECSA proxy.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Co100-2xNixFex MOF-74 composition series · Powder · O2-free 1 M KOH; N2 bubbled at least 45 min; Hg/HgO reference; Pt foil counter; scan rate 5 mV s-1; non-IR-compensated.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Fe100-2xNixCox MOF-74 composition series · Powder · O2-free 1 M KOH; N2 bubbled at least 45 min; Hg/HgO reference; Pt foil counter; scan rate 5 mV s-1; non-IR-compensated.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours

Ni100-2xCoxFex MOF-74 composition series · Powder · O2-free 1 M KOH; N2 bubbled at least 45 min; Hg/HgO reference; Pt foil counter; scan rate 5 mV s-1; non-IR-compensated.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2024 · Triazacoronene-Based 2D Conductive Metal–Organic Framework for High-Capacity Lithium Storage

Cu-TAC electrode · Electrode · 0.1 mV s^-1 in 0.01-3.0 V vs Li+/Li.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2024 · Triggering Anodic Luminol Electrochemiluminescence through Electrostatic Interactions: An Innovative Approach Utilizing Conductive Metal-Organic Framework Co-HHTP

Co-HHTP-modified glassy carbon electrode · Electrode · Three-electrode system in 0.04 M B-R buffer with catalyst-modified GCE; comparison of HHTP, Ni-HHTP and Co-HHTP under air-saturated conditions.

Electrochemistry ApplicationLinear sweep

Voltage disparity from OER and HER LSV curves

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · SI Fig. S12 reports Delta V20 at 20 mA cm-2 for NF, NZ, 4-BNZ, 9-BNZ, 24-BNZ and 48-BNZ.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance and ECSA calculation

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · Non-faradaic CV scans at 10, 20, 30, 40 and 50 mV/s; Cdl from positive/negative current fit, ECSA from Cdl/Cs.

Electrochemistry ApplicationLinear sweep

Magnified LSV extrapolation onset-potential table

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · SI Fig. S8 tabulates OER and HER onset potentials for NF, NZ, 4-BNZ, 9-BNZ, 24-BNZ and 48-BNZ in alkaline electrolyte.

Electrochemistry ApplicationLinear sweep

HER LSV and Tafel analysis

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · 1 M KOH, three-electrode cell, same electrode fabrication and RHE calibration; overpotential at 20 mA cm-2.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · 1 M KOH, three-electrode cell, Ag/AgCl reference, Pt wire counter, 5 mV/s LSV, RHE calibrated, IR compensated; overpotential at 20 mA cm-2.

Electrochemistry ApplicationLinear sweep

Two-electrode overall water-splitting LSV and chronoamperometry

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · Two pieces of 24-BNZ coated NF as cathode and anode in 1 M KOH; 10 mA cm-2 benchmark and 16 h CA.

Electrochemistry ApplicationLinear sweep

Urea electrolysis LSV

2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water

24-BNZ composite electrode on nickel foam · Electrode · 24-BNZ on NF as both cathode and anode in 1 M KOH + 0.33 M urea; scan rate 1 mV/s in SI Fig. S13.

Electrochemistry ApplicationCyclic voltammetry

CV charge-storage kinetics analysis

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPE/Ni foam working electrode · Electrode · Power-law b-value analysis and diffusion/capacitive contribution separation from CV scans 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

CV charge-storage kinetics analysis

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPY/Ni foam working electrode · Electrode · Power-law b-value analysis and diffusion/capacitive contribution separation from CV scans 10-50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge in three-electrode cell

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPE/Ni foam working electrode · Electrode · 3 M KOH electrolyte; Pt foil counter electrode; Hg/HgO reference; operating potential 0-0.6 V; CV at 10-50 mV s-1; GCD at 1-10 A g-1

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge in three-electrode cell

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPY/Ni foam working electrode · Electrode · 3 M KOH electrolyte; Pt foil counter electrode; Hg/HgO reference; operating potential 0-0.6 V; CV/GCD comparison

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from cyclic voltammetry

2024 · Vertical Conductive Metal–Organic Framework Single-Crystalline Nanowire Arrays for Efficient Electrocatalytic Hydrogen Evolution

Ag-MOF-NWs · Single Crystal · Cyclic voltammetry at scan rates 50-150 mV s-1 in the voltage window 0.4-0.5 V for Cdl/ECSA comparison.

Electrochemistry ApplicationLinear sweep

HER LSV and Tafel analysis on on-chip micro-electrochemical device

2024 · Vertical Conductive Metal–Organic Framework Single-Crystalline Nanowire Arrays for Efficient Electrocatalytic Hydrogen Evolution

Ag-MOF-NWs · Single Crystal · Three-electrode HER test in 0.5 M H2SO4 droplet at ambient temperature; Ag-MOF connected to gold pad working electrode, Ag/AgCl reference, graphite rod counter; LSV scan rate 5 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

HER stability after cyclic voltammetry and acid soaking

2024 · Vertical Conductive Metal–Organic Framework Single-Crystalline Nanowire Arrays for Efficient Electrocatalytic Hydrogen Evolution

Ag-MOF-NWs · Single Crystal · 1000 CV cycles, post-HER SEM/Raman/XPS, and Ag-BHT XRD after soaking in 0.5 M H2SO4 for 24 h.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2024 · ZnS/MnO2 metal organic framework based conductive hydrogel for highly selective and sensitive detection of glutathione in serum samples

2 wt% ZnS/MnO2-MOF hydrogel electrode · Electrode · Three-electrode cell on CHI 660E workstation; hydrogel working electrode, platinum counter, Ag/AgCl reference in 0.1 M KCl; 0.1 M KCl with 5 mM Fe(CN)6^3-/4- at pH 7.4; potential range -0.1 to 0.5 V vs Ag/AgCl; with and without 10 nM GSH.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate study

2024 · ZnS/MnO2 metal organic framework based conductive hydrogel for highly selective and sensitive detection of glutathione in serum samples

2 wt% ZnS/MnO2-MOF hydrogel electrode · Electrode · 0.1 M PBS electrolyte with 10 nM GSH; scan rates 10, 30, 50, 70, 90, 110 and 130 mV/s.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2024 · ZnS/MnO2 metal organic framework based conductive hydrogel for highly selective and sensitive detection of glutathione in serum samples

2 wt% ZnS/MnO2-MOF hydrogel electrode · Electrode · GSH sensing in PBS electrolyte solution; concentration range 10 nM to 10 mM; potential window -0.1 to 0.5 V.

Sensing ApplicationDifferential pulse

DPV standard addition in simulated blood serum

2024 · ZnS/MnO2 metal organic framework based conductive hydrogel for highly selective and sensitive detection of glutathione in serum samples

2 wt% ZnS/MnO2-MOF hydrogel electrode · Electrode · Unknown GSH measured first, then known GSH added to electrolyte solution; samples S1, S2 and S3 represent different GSH concentrations; N=5 devices in Fig. 8 caption.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV and galvanostatic charge-discharge

2023 · A Conductive 2D Conjugated Tetrathia[8]circulene-Based Nickel Metal–Organic Framework for Energy Storage

Ni-TTC carbon-paper film electrode · Electrode · 1 M KCl aqueous electrolyte; SCE reference; Pt wire counter; CV -0.5 to 0.5 V vs SCE at 1-100 mV s-1; GCD 0.2-5.0 A g-1

Electrochemistry ApplicationCyclic voltammetry

CV of 8OH-TTC ligand control

2023 · A Conductive 2D Conjugated Tetrathia[8]circulene-Based Nickel Metal–Organic Framework for Energy Storage

8OH-TTC ligand · Powder · Same condition as Ni-TTC three-electrode CV, used to compare ligand redox activity

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry for glucose response

2023 · A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum

Cu-HHTT/CF working electrode · Electrode · 0.1 M NaOH electrolyte; scan rate 50 mV s^-1; before and after 1 mM glucose; compared with bare CF.

Sensing ApplicationCyclic voltammetry

Glucose CV scan-rate study

2023 · A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum

Cu-HHTT/CF working electrode · Electrode · 1 mM glucose; scan rate varied from 20 to 200 mV s^-1.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry for H2O2 response

2023 · A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum

Cu-HHTT/CF working electrode · Electrode · 0.1 M PBS, pH 7.0; potential range -0.7 to +0.4 V; before and after 1 mM H2O2; compared with bare CF.

Sensing ApplicationCyclic voltammetry

H2O2 CV scan-rate study

2023 · A Conductive Metal−Organic Framework Based on Triptycene Ligand: An Effective Electrochemical Sensor for Glucose and H2O2 Detection in Food and Human Serum

Cu-HHTT/CF working electrode · Electrode · 1 mM H2O2; scan rate varied from 20 to 200 mV s^-1.

Electrochemistry ApplicationCyclic voltammetryDifferential pulse

CV and DPV

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · CV and DPV in PBS under 200 μM CAP at 50 mV/s for Ni3(HITP)2, PdCl2, Pd(II)@Ni3(HITP)2, and GCE.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate study

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · CV measurements under scan rates 5-80 mV/s in 200 μM CAP PBS electrolyte.

Sensing ApplicationDifferential pulse

DPV concentration calibration

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · DPV measurements in CAP concentration gradient from 0 to 200 μM; calibration over 0.2 nM to 20 μM.

Sensing ApplicationDifferential pulse

DPV peak current optimisation

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · DPV peak currents in 200 μM CAP over Pd(II)@Ni3(HITP)2 samples with different PdCl2 loading masses.

Sensing ApplicationDifferential pulse

DPV pH/interference testing

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · DPV with pH 3-11 and interfering substances in 200 μM CAP.

Sensing ApplicationDifferential pulse

DPV repeatability

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · 10 repeated DPV cycles under 50 mV/s in 200 μM CAP PBS electrolyte.

Sensing ApplicationDifferential pulse

DPV storage stability

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.05 mL/mg · Powder · DPV after supernate storage for 1 month and modified electrode storage for 7 days in air.

Sensing ApplicationCyclic voltammetryDifferential pulse

DPV/CV/EIS variant performance

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Pd(II)@Ni3(HITP)2, PdCl2 loading mass 0.076 mL/mg · Powder · EIS, DPV, and CV for lower and higher PdCl2 loading variants.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and galvanostatic charge/discharge in Li half-cell

2023 · A Pyrazine-Based 2D Conductive Metal-Organic Framework for Efficient Lithium Storage†

TPQG-Cu-MOF composite cathode on carbon-coated aluminium foil · Electrode · R2032 cell with Li metal counter electrode, Celgard 2325 separator, 1 mol/L LiTFSI in DOL/DME 1:1; CV window 1.3-3.8 V vs Li/Li+ at 0.2 mV s-1; GCD at 20 mAh g-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · A simplistic approach for the synthesis of Covalent Organic Frameworks(COFs) comprising of tetrafunctionalized porphyrin and polyoxometalates to uncover catalytic applications

P@Cu-AndCOF bulk solid · Powder · DMF/CH3CN (v/v = 1:1) solution; Ag/AgCl reference electrode; Fc+/Fc internal standard.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · A simplistic approach for the synthesis of Covalent Organic Frameworks(COFs) comprising of tetrafunctionalized porphyrin and polyoxometalates to uncover catalytic applications

P@Ni-AndCOF bulk solid · Powder · DMF/CH3CN (v/v = 1:1) solution; Ag/AgCl reference electrode; Fc+/Fc internal standard.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and UV-vis control measurements

2023 · A simplistic approach for the synthesis of Covalent Organic Frameworks(COFs) comprising of tetrafunctionalized porphyrin and polyoxometalates to uncover catalytic applications

Tris@ZnP solution/control sample · Unknown · CV in DMF/CH3CN (v/v = 1:1) using Ag/AgCl reference and Fc+/Fc internal standard; UV-vis in DMSO.

Electrochemistry ApplicationCyclic voltammetry

6OH-TBC ligand CV/GCD/EIS/cycling control

2023 · A tribenzocoronene-based 2D conductive metal-organic framework for efficient energy storage

6OH-TBC ligand control electrode · Electrode · Control electrochemical performance of ligand; CV at 2 mV s-1; GCD at 1.0 A g-1; cycling at 5 A g-1

Electrochemistry ApplicationCyclic voltammetry

Two-electrode Cu-TBC//AC CV and GCD

2023 · A tribenzocoronene-based 2D conductive metal-organic framework for efficient energy storage

two-electrode asymmetrical Cu-TBC//AC device · Electrode · 0-0.6 V; 0.1 M H2SO4; CV scan rates 2-100 mV s-1; GCD at 0.5-20 A g-1

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV and GCD

2023 · A tribenzocoronene-based 2D conductive metal-organic framework for efficient energy storage

Cu-TBC modified glassy carbon electrode · Electrode · 0.1 M H2SO4; Ag/AgCl reference; Pt counter; potential window -0.4 to 0.6 V; scan rates 2-100 mV s-1; GCD current densities 0.2-20 A g-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport

UIOSOL@PP separator · Thin Film · Coin cells with stainless steel working electrode and Li counter electrode; scan rate 1.0 mV s-1 between -0.2 and 4.3 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport

UIOSOL@PP separator · Thin Film · Li-steel coin cell, scan speed 1 mV s-1 from initial voltage to 4.3 V; electrolyte EC/EMC/DMC 1:1:1 with 10% FEC.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Por(Co)-MOF · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-MOF · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(1:1) · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(2:1) · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(5:1) · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(9:1) · Powder · Cdl estimated from CV in 0.5 M KHCO3, potential window -0.15 to -0.25 V vs RHE, scan rates 10-100 mV s-1.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Por(Co)-MOF · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-MOF · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(1:1) · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(2:1) · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(5:1) · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationLinear sweep

LSV CO2RR in H-type cell

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-Por(Co)-MOF(9:1) · Powder · CO2-saturated 0.5 M KHCO3; Nafion-117 separated gas-tight H-cell; LSV from 0 to -1.2 V vs RHE at 10 mV s-1; catalyst ink on 1 x 1 cm2 carbon fibre paper.

Electrochemistry ApplicationCyclic voltammetry

CV redox potentials in 0.2 M Na2SO4

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

MOF sample series · Powder · Vg redox potentials E1/E2 measured for four proportional Vg-Por(Co)-MOFs under N2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of Li-S cell

2023 · Conductive metal-organic framework flowers facilitate the anchoring and conversion kinetics of polysulfides for lithium‑sulfur batteries

flower-like MIL-47/CNT interlayer · Electrode · Initial CV curves of Li-S battery with MIL-47/CNT interlayer at 0.1 mV s-1.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

symmetric-cell CV and LSV/Tafel

2023 · Conductive metal-organic framework flowers facilitate the anchoring and conversion kinetics of polysulfides for lithium‑sulfur batteries

MIL-47 powder / nanosheets collected from autoclave · Powder · Symmetric batteries with MIL-47 electrode; LSV and Tafel compared against CNT/glassy carbon controls.

Electrochemistry ApplicationCyclic voltammetry

Li+ transfer number and CV-derived diffusion coefficient

2023 · Conductive metal-organic framework flowers facilitate the anchoring and conversion kinetics of polysulfides for lithium‑sulfur batteries

flower-like MIL-47/CNT interlayer · Electrode · Li-Li symmetric batteries for current-time curves; CV at different scan rates for DLi+ calculation via Randles-Sevcik-type equation.

Electrochemistry ApplicationCyclic voltammetry

two-electrode asymmetric supercapacitor CV, GCD, EIS and Ragone analysis

2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes

NDC//MWM-1 (Co/2Ni) asymmetric supercapacitor · Electrode · CR2035 button cell; NDC positive electrode, MWM-1(Co/2Ni) negative electrode, cellulose cloth separator, 6 M KOH

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD and EIS

2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes

MWM-1 (Co) composite working electrode · Electrode · 6 M KOH; Ni foam working electrode, Pt needle counter electrode, Hg/HgO reference; CV/GCD at varied scan rates and specific currents; EIS 0.01 Hz-100 kHz

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD and EIS

2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes

MWM-1 (Co/2Ni) composite working electrode · Electrode · 6 M KOH; Ni foam working electrode; CV/GCD at varied scan rates and specific currents; EIS 0.01 Hz-100 kHz

SpectroscopyCyclic voltammetry

post-CV XPS, CV and in situ Raman during charge-discharge

2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes

MWM-1 (Co/2Ni) composite working electrode · Electrode · XPS before/after 100 cycles of cyclic voltammetry; in situ Raman during charge/discharge

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · CV in 1 M KCl; capacitance from 0.40-0.50 V region.

Sensing ApplicationDifferential pulse

DPV analysis of MG in fish samples with ELISA comparison

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · Crucians exposed to 1 uM MG bath for 12 h; fish sampled over time; extracted samples measured in 5 mL 0.1 M PBS pH 7.0.

Sensing ApplicationDifferential pulse

Selective and competitive DPV tests

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 0.1 uM MG with K+, Na+, Mg2+, Ca2+, Zn2+, Glu, serine, L-cysteine, UA, XA, HXA, CAP, TET, OTC and ERY interferents.

Sensing ApplicationDifferential pulse

DPV feasibility comparison for MG

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 0.1 M PBS, pH 7.0, 200 nM MG; comparison of CPE, Cu-MOF/CPE, Ni-MOF/CPE and Co-MOF/CPE.

Sensing ApplicationDifferential pulse

Non-ratiometric DPV calibration

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 0.1 M PBS pH 7.0; peak MG current versus concentration without ratiometric normalisation.

Sensing ApplicationDifferential pulse

DPV condition optimisation

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · Optimisation of Cu3(HHTP)2:graphite ratio, buffer system, PBS pH and MG accumulation time.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate and Laviron analysis

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · Cu-MOF/CPE with 5 uM MG in PBS pH 7.0; scan-rate dependence and Epa-ln(v) relation.

Sensing ApplicationDifferential pulse

Ratiometric DPV calibration

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 0.1 M PBS, pH 7.0; MG concentration increased from 5 to 1500 nM; linear ratiometric range 5-1000 nM.

Electrochemistry ApplicationCyclic voltammetry

CV with ferricyanide/ferrocyanide redox probe

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 5.0 mM K3/K4Fe(CN)6 + 0.1 M KCl for Figure 2F; 1 mM K3[Fe(CN)6] in 0.1 M KCl for effective area scan-rate series.

Sensing ApplicationDifferential pulse

Repeated ratiometric DPV response

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · 0.1 M PBS pH 7.0 containing 0.5 uM MG; six repeated measurements and six independently prepared electrodes.

Sensing ApplicationDifferential pulse

DPV recovery/real-sample analysis for water and shrimp

2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish

Cu-MOF/CPE electrode · Electrode · Fishing-pond water measured after filtration and pH adjustment; shrimp samples spiked/immersed with MG standards.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry

2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media

Cu3(HITP)2/Nafion glassy-carbon working electrode · Electrode · Alkaline 0.1 M KOH; oxygen-saturated for ORR/OER after O2 bubbling; LSV at 5 mV s-1; EIS 10^-2 to 10^5 Hz with +/-5 mV amplitude; potentials converted to RHE.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry

2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media

Cu3(HITP)2/Nafion glassy-carbon working electrode · Electrode · Neutral 0.1 M PBS; oxygen-saturated for ORR/OER after O2 bubbling; LSV at 5 mV s-1; EIS 10^-2 to 10^5 Hz with +/-5 mV amplitude; potentials converted to RHE.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry

2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media

CuCo-HITP/Nafion glassy-carbon working electrode · Electrode · Alkaline 0.1 M KOH; oxygen-saturated for ORR/OER after O2 bubbling; LSV at 5 mV s-1; EIS 10^-2 to 10^5 Hz with +/-5 mV amplitude; potentials converted to RHE.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry; post-test SEM/TEM/PXRD/FT-IR

2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media

CuCo-HITP/Nafion glassy-carbon working electrode · Electrode · Neutral 0.1 M PBS; oxygen-saturated for ORR/OER after O2 bubbling; LSV at 5 mV s-1; EIS 10^-2 to 10^5 Hz with +/-5 mV amplitude; potentials converted to RHE.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance (Cdl) from CV curves

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · HER electrochemically active surface area proxy in alkaline media.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry (LSV)

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · HER in N2-saturated 1.0 M KOH; electrolyte degassed by N2 at least 35 min; scan rate 5 mV s^-1; self-supported MOF working electrode, graphite rod counter electrode, Hg/HgO reference electrode.

Electrochemistry ApplicationCyclic voltammetry

CV cycling and chronopotentiometry

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · HER stability after 1000 CV cycles and 15 h at 10 mA cm^-2.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance (Cdl) from CV curves

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · OER electrochemically active surface area proxy in alkaline media.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · OER in 1.0 M KOH; commercial RuO2 benchmark under same conditions.

Electrochemistry ApplicationCyclic voltammetry

CV cycling and chronoamperometry

2023 · Creating Dual Active Sites in Conductive Metal-Organic Frameworks for Efficient Water Splitting

RuCo-CAT/CC nanorod arrays · Electrode · OER stability after 1000 CV cycles and 15 h at 10 mA cm^-2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

CoHHTP/SCCB/Nafion on carbon cloth electrode · Electrode · Non-Faradaic CV at 20, 40, 60, 80 and 100 mV s-1; Cdl as ECSA proxy

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu1Co1HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · Non-Faradaic CV at 20, 40, 60, 80 and 100 mV s-1; Cdl as ECSA proxy

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu1Co2HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · Non-Faradaic CV at 20, 40, 60, 80 and 100 mV s-1; Cdl as ECSA proxy

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu2Co1HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · Non-Faradaic CV at 20, 40, 60, 80 and 100 mV s-1; Cdl as ECSA proxy

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

CuHHTP/SCCB/Nafion on carbon cloth electrode · Electrode · Non-Faradaic CV at 20, 40, 60, 80 and 100 mV s-1; Cdl as ECSA proxy

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

CoHHTP/SCCB/Nafion on carbon cloth electrode · Electrode · 0.5 M Na2SO4 + 0.1 M NaNO3, potentials vs RHE; comparison of catalytic current

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu1Co1HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · 0.5 M Na2SO4 + 0.1 M NaNO3, potentials vs RHE; comparison of catalytic current

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu1Co2HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · 0.5 M Na2SO4 + 0.1 M NaNO3, potentials vs RHE; comparison of catalytic current

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

Cu2Co1HHTP/SCCB/Nafion on carbon cloth electrode · Electrode · 0.5 M Na2SO4 + 0.1 M NaNO3, potentials vs RHE; comparison of catalytic current

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Cu/Co bimetallic conductive MOFs: Electronic modulation for enhanced nitrate reduction to ammonia

CuHHTP/SCCB/Nafion on carbon cloth electrode · Electrode · 0.5 M Na2SO4 + 0.1 M NaNO3, potentials vs RHE; comparison of catalytic current

Electrochemistry ApplicationCyclic voltammetry

homogeneous cyclic voltammetry

2023 · Decoupling Redox Hopping and Catalysis in Metal-Organic Frameworks -based Electrocatalytic CO2 Reduction

CoPc-COOH · Powder · 0.5 mM CoPc or TPP(Co) in 5 mL DMF with 0.1 M TBAPF6; glassy carbon working electrode

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and first derivative analysis

2023 · Decoupling Redox Hopping and Catalysis in Metal-Organic Frameworks -based Electrocatalytic CO2 Reduction

CoPc@NU-1000-h carbon/Nafion electrode · Electrode · MOF catalyst plus Nafion on graphite sheet; 0.5 M KHCO3(aq); CO2 and argon atmospheres; carbon black omitted for onset determination

Electrochemistry ApplicationCyclic voltammetry

scan-rate dependent cyclic voltammetry

2023 · Decoupling Redox Hopping and Catalysis in Metal-Organic Frameworks -based Electrocatalytic CO2 Reduction

CoPc@NU-1000-h carbon/Nafion electrode · Electrode · Non-faradaic region at varied scan rates; catalyst/carbon black/Nafion on graphite sheet; 0.5 M KHCO3 under CO2

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2023 · Diazo-reaction based dual-mode colorimetric-electrochemical sensing of nitrite in pickled food

Cu-MOFs/EGP · Electrode · DPV in 0.1 M acetate buffer, pH 3.5, containing 1.0 mM TMB; potential range 0 V to +1.1 V.

Electrochemistry ApplicationDifferential pulse

Ratiometric DPV nitrite sensing using iNO2-/iTMB

2023 · Diazo-reaction based dual-mode colorimetric-electrochemical sensing of nitrite in pickled food

Cu-MOFs/EGP · Electrode · DPV curves of Cu-MOFs/EGP-TMB system with nitrite concentrations 6.7e-7, 1.0e-6, 5.0e-5, 1.0e-4, 1.5e-4 and 2.0e-4 mol L-1.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2023 · Electrically conductive [Fe4S4]-based organometallic polymers

[Fe4S4Cl2(Me-NHC)] (1) powder · Powder · 5 uL DMF suspension (1.0 mg mL-1) drop-cast on CHI 104 3 mm glassy carbon electrode; 0.1 M LiPF6 or TBAPF6 in acetonitrile under N2; 10 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for acidic ORR activity

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N6O6)2 MOF RRDE electrode · Electrode · CV of Pt3(C12N12H6)2, Pt3(C12N9H3O3)2, Pt3(C12N6O6)2 and Pt/C in oxygen-saturated 0.5 M H2SO4.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for ORR

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N9H3O3)2 MOF RRDE electrode · Electrode · O2-saturated 0.5 M H2SO4; scan rate 5 mV s^-1; 1600 rpm; potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for ORR

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N12H6)2 MOF RRDE electrode · Electrode · O2-saturated 0.5 M H2SO4; scan rate 5 mV s^-1; 1600 rpm; potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for ORR

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N6O6)2 MOF RRDE electrode · Electrode · O2-saturated 0.5 M H2SO4; scan rate 5 mV s^-1; 1600 rpm; potentials vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for ORR

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

20 wt% Pt/C RRDE electrode · Electrode · O2-saturated 0.5 M H2SO4; 1600 rpm; Pt loading 60 microg cm^-2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

iGMOF1 black powder · Powder · Solid-state CV of iGMOF1 and Cu3(HATP)2 drop-cast films on glassy carbon in MeCN; solution CVs of HATP, HCTP, and [HATP/HCTP]n in DMF; 0.1 M Bu4NPF6 vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Electrochromism in Isoreticular Metal-Organic Framework Thin Films with Record High Coloration Efficiency

Zn-NDI@FTO thin film · Thin Film · MOF thin film working electrode; glassy carbon counter; non-aqueous Ag/Ag+ reference (10 mM AgPF6 in acetonitrile); 0.5 M KPF6 in dry DMF; argon bubbled 15 min; potentials vs Fc+/0

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Electrochromism in Isoreticular Metal-Organic Framework Thin Films with Record High Coloration Efficiency

Zn-PDI@FTO thin film · Thin Film · MOF thin film working electrode; glassy carbon counter; non-aqueous Ag/Ag+ reference (10 mM AgPF6 in acetonitrile); 0.5 M KPF6 in dry DMF; argon bubbled 15 min; potentials vs Fc+/0

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Electrochromism in Isoreticular Metal-Organic Framework Thin Films with Record High Coloration Efficiency

Zn-PMDI@FTO thin film · Thin Film · MOF thin film working electrode; glassy carbon counter; non-aqueous Ag/Ag+ reference (10 mM AgPF6 in acetonitrile); 0.5 M KPF6 in dry DMF; argon bubbled 15 min; potentials vs Fc+/0

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, two-electrode asymmetric device

2023 · Elucidating d-π conjugated two-dimensional 2,3,6,7,10,11-hexahydroxytriphenylene based conductive metal-organic framework for hybrid supercapacitors

Ni3(HHTP)2//AC hybrid supercapacitor · Electrode · Ni3(HHTP)2//AC hybrid device; CV over 0-1.6 V at 3, 10, 30, 50, 70 and 100 mV/s

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, three-electrode

2023 · Elucidating d-π conjugated two-dimensional 2,3,6,7,10,11-hexahydroxytriphenylene based conductive metal-organic framework for hybrid supercapacitors

activated carbon electrode · Electrode · 3 M KOH electrolyte; activated carbon electrode evaluated from 0 to -1.0 V to define the negative-electrode window for device fabrication

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry, three-electrode

2023 · Elucidating d-π conjugated two-dimensional 2,3,6,7,10,11-hexahydroxytriphenylene based conductive metal-organic framework for hybrid supercapacitors

Ni3(HHTP)2 slurry electrode on nickel foam · Electrode · 3 M KOH electrolyte; platinum counter electrode; Hg/HgO reference; Ni3(HHTP)2 electrode cycled over 0-0.7 V and at scan rates 3-50 mV/s

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry photocurrent

2023 · Engineering Band Gap and Photoconduction in Semiconducting Metal Organic Frameworks: Metal Node Effect

M-THQ-FTO photocathode series · Electrode · MOF-FTO photocathodes in 0.1 M Na2SO4; 300 W Xe lamp with IR filter and >400 nm long-pass UV filter; dark, light, and chopped-light measurements.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeZn MOF nanosheets · Nanosheet · non-Faradaic CV; scan rates 10, 20, 30, 40 mV/s; 1.1-1.2 V vs RHE

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

Fe MOF nanosheets · Nanosheet · 1 M KOH; 5 mV/s; OER comparison control

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

Ni MOF nanosheets · Nanosheet · 1 M KOH; 5 mV/s; OER comparison control

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFe MOF nanosheets · Nanosheet · 1 M KOH; 5 mV/s; OER comparison control

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeCd MOF nanosheets · Nanosheet · 1 M KOH; OER at 10 mA cm-2; Tafel slope

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeCu MOF nanosheets · Nanosheet · 1 M KOH; OER at 10 mA cm-2; Tafel slope

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeMn MOF nanosheets · Nanosheet · 1 M KOH; OER at 10 mA cm-2; Tafel slope

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and Tafel analysis

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFePb MOF nanosheets · Nanosheet · 1 M KOH; OER at 10 mA cm-2; Tafel slope

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeZn MOF nanosheets · Nanosheet · 1 M KOH; 5 mV/s; OER overpotential at 10 mA cm-2 and current density at 1.53 V vs RHE

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and chronoamperometry

2023 · Engineering defective trimetallic metal-organic framework nanosheets for advanced water oxidation electrocatalysis

NiFeZn-1 MOF nanosheets · Nanosheet · NiFeZn-1/NiFeZn-5; 1 M KOH; LSV 5 mV/s; CA at 1.5 V vs RHE

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from non-Faradaic CV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-A on glassy carbon electrode · Electrode · CV scan rates 40, 60, 80, 100 and 120 mV s-1; Cdl from half current-density difference versus scan rate

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from non-Faradaic CV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-B on glassy carbon electrode · Electrode · CV scan rates 40, 60, 80, 100 and 120 mV s-1; Cdl from half current-density difference versus scan rate

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from non-Faradaic CV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on glassy carbon electrode · Electrode · CV scan rates 40, 60, 80, 100 and 120 mV s-1; Cdl from half current-density difference versus scan rate

Electrochemistry ApplicationCyclic voltammetry

accelerated CV cycling stability

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on glassy carbon electrode · Electrode · 1000 CV cycles followed by LSV comparison

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-A on glassy carbon electrode · Electrode · 0.1 M KOH electrolyte; scan rate 5 mV s-1; current density target 10 mA cm-2

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-B on glassy carbon electrode · Electrode · 0.1 M KOH electrolyte; scan rate 5 mV s-1; current density target 10 mA cm-2

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on glassy carbon electrode · Electrode · 0.1 M KOH electrolyte; scan rate 5 mV s-1; current density target 10 mA cm-2

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-A on glassy carbon electrode · Electrode · three-electrode test in 1.0 M KOH; scan rate 5 mV s-1; 90% iR correction; potentials vs RHE

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-B on glassy carbon electrode · Electrode · three-electrode test in 1.0 M KOH; scan rate 5 mV s-1; 90% iR correction; potentials vs RHE

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on glassy carbon electrode · Electrode · three-electrode test in 1.0 M KOH; scan rate 5 mV s-1; 90% iR correction; potentials vs RHE

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-A on carbon fibre paper · Electrode · 1.0 M KOH; Co-MOF drop-coated on carbon fibre paper; scan rate 5 mV s-1

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-B on carbon fibre paper · Electrode · 1.0 M KOH; Co-MOF drop-coated on carbon fibre paper; scan rate 5 mV s-1

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV), OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on carbon fibre paper · Electrode · 1.0 M KOH; Co-MOF drop-coated on carbon fibre paper; scan rate 5 mV s-1

Diffraction StructureCyclic voltammetry

PXRD after CV cycling/OER

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C electrode after OER testing · Electrode · PXRD of Co-MOF-C after reaction

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-A on glassy carbon electrode · Electrode · Tafel plots extracted from LSV curves using eta = b log j + a

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-B on glassy carbon electrode · Electrode · Tafel plots extracted from LSV curves using eta = b log j + a

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation

Co-MOF-C on glassy carbon electrode · Electrode · Tafel plots extracted from LSV curves using eta = b log j + a

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2023 · Enhancing the photo-electrocatalytic properties of g-C3N4 by boron doping and ZIF-8 hybridization

B-g-C3N4 working electrode · Electrode · CO2 bubbling, dark condition, -0.8 to 0.8 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2023 · Enhancing the photo-electrocatalytic properties of g-C3N4 by boron doping and ZIF-8 hybridization

B-g-C3N4/ZIF-8 working electrode · Electrode · CO2 bubbling, dark condition, -0.8 to 0.8 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2023 · Enhancing the photo-electrocatalytic properties of g-C3N4 by boron doping and ZIF-8 hybridization

g-C3N4 working electrode · Electrode · Six cycles for each electrode; sixth cycle recorded; CO2 bubbling; dark condition; potential range -0.8 to 0.8 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2023 · Enhancing the photo-electrocatalytic properties of g-C3N4 by boron doping and ZIF-8 hybridization

g-C3N4/ZIF-8 working electrode · Electrode · CO2 bubbling, dark condition, -0.8 to 0.8 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV)

2023 · Enhancing the photo-electrocatalytic properties of g-C3N4 by boron doping and ZIF-8 hybridization

B-g-C3N4/ZIF-8 working electrode · Electrode · Dark and light conditions with 430 nm cut-off filter and CO2 bubbling; applied potential range -1.2 to 0.2 V vs NHE; scan rate 0.05 V s-1.

Electrical TransportCyclic voltammetry

CV and EIS-derived redox conductivity

2023 · Experimental manifestation of redox-conductivity in metal-organic frameworks and its implication for semiconductor/insulator switching

UU-100(Co) thin film on FTO · Thin Film · Representative CV at 100 mV s-1 and EIS conductivity analysis in Ar-saturated DMF with 0.1 M KPF6.

Electrical TransportCyclic voltammetry

Countercation-dependent CV and EIS redox conductivity

2023 · Experimental manifestation of redox-conductivity in metal-organic frameworks and its implication for semiconductor/insulator switching

Zn(pyrazol-NDI) thin film on FTO · Thin Film · CV at 5 mV s-1 and steady-state redox conductivity in Ar-saturated DMF with 0.1 M KPF6, LiClO4, or TBAPF6.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · Experimental manifestation of redox-conductivity in metal-organic frameworks and its implication for semiconductor/insulator switching

Zn(pyrazol-NDI) thin film on FTO · Thin Film · CV in Ar-saturated DMF with 0.1 M KPF6 supporting electrolyte; representative slow scan at 5 mV s-1.

Electrical TransportCyclic voltammetry

CV and EIS-derived redox conductivity

2023 · Experimental manifestation of redox-conductivity in metal-organic frameworks and its implication for semiconductor/insulator switching

Zr(dcphOH-NDI) thin film on FTO · Thin Film · Representative CV at 100 mV s-1 and EIS conductivity analysis in Ar-saturated DMF with 0.1 M KPF6.

Electrochemistry ApplicationCyclic voltammetry

Na half-cell galvanostatic cycling and CV

2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers

1D-CuTABQ composite cathode electrode · Electrode · Voltage window 1.0-3.8 V vs Na/Na+; 4 M NaPF6 in DME used to widen oxidative stability; current densities as reported

Electrochemistry ApplicationCyclic voltammetry

Na half-cell galvanostatic cycling and CV

2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers

2D-CuTABQ composite cathode electrode · Electrode · Voltage window 1.0-3.8 V vs Na/Na+; 4 M NaPF6 in DME used to widen oxidative stability; current densities as reported

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · In Situ Oxidation of Pyridyl-Dihydrobenzoimidazoquinazoline and the Synthesis of a Highly Luminescent Cd(II) Coordination Polymer: A Promising Candidate for Mutagenic Nitroaromatic Detection and Device Fabrication

As-synthesised bulk compound 1 · Powder · 0.1 M KCl solution, scan rate 10 mV/s.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry electrochemical stability window

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.5@MOF (0.5:1) · Pellet · Na/IL0.5@MOF/stainless steel 2032 coin cells; room temperature; scan rate 1 mV s-1 between 0 and 7.0 V vs Na+/Na; no additive to improve interfaces

Diffraction StructureLinear sweep

postmortem X-ray diffraction after LSV

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.5@MOF (0.5:1) · Pellet · Diffractograms of IL0.5@MOF as prepared and after LSV to 7 V vs Na+/Na

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV voltage-window screening for device electrodes

2023 · Isonicotinic acid-based copper-MOF: An exotic redox propertied electrode material for high energy asymmetric supercapacitor

Cu-MOF//activated carbon asymmetric hybrid supercapacitor · Electrode · Activated carbon functionalized over 0 to -1 V; Cu-MOF over 0 to 0.7 V; Fig. S3 used to choose device voltage window.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode configuration

2023 · Isonicotinic acid-based copper-MOF: An exotic redox propertied electrode material for high energy asymmetric supercapacitor

Cu-MOF/Ni foam working electrode · Electrode · Hg/HgO reference, Pt counter electrode, 1 M KOH, room temperature; CV over 0-0.7 V at multiple sweep rates.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of asymmetric hybrid supercapacitor device

2023 · Isonicotinic acid-based copper-MOF: An exotic redox propertied electrode material for high energy asymmetric supercapacitor

Cu-MOF//activated carbon asymmetric hybrid supercapacitor · Electrode · Voltage-window optimisation at 30 mV/s over 0-0.9, 1.1, 1.3, 1.5 and 1.7 V; device CV at 3-100 mV/s over 0-1.7 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry on glassy carbon electrode

2023 · Ligand-Oxidation-Based Anodic Synthesis of Oriented Films of Conductive M-Catecholate Metal-Organic Frameworks with Controllable Thickness

Cu3(HHTP)2 film on Au/Cr/glass anode deposited at 0.25 V for 45 min · Thin Film · Background, Cu(NO3)2, HHTP and Cu3(HHTP)2 precursor solutions; 100 mV/s, pH 3.3, NaCl 100 mM, 30 C, nitrogen purged.

Electrochemistry ApplicationCyclic voltammetry

CV deposition and chronoamperometry on GCE

2023 · Ligand-Oxidation-Based Anodic Synthesis of Oriented Films of Conductive M-Catecholate Metal-Organic Frameworks with Controllable Thickness

Cu3(HHTP)2 Au-film growth kinetics series · Thin Film · CV deposition -0.2 to 0.35 V at 100 mV/s; potentiostatic deposition at 0.30 V on a 3 mm GCE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for LUMO/onset reduction potential

2023 · Linker-Based Bandgap Tuning in Conductive MOF Solid Solutions

Cu3(TATHB)2 / Cu-TATHB (x = 0) · Pellet · MOF ink drop-cast on glassy carbon; Ag/Ag+ reference; Pt wire counter; 0.1 M TBAPF6 acetonitrile electrolyte; scan rate 100 mV s^-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV), chopped and continuous

2023 · Metal-Organic Framework Glass Catalysts from Melting Glass-Forming Cobalt-Based Zeolitic Imidazolate Framework for Boosting Photoelectrochemical Water Oxidation

Co-agZIF-62/NiO/BiVO4 photoanode · Electrode · Three-electrode cell in 0.5 M KBi electrolyte (pH 9.5), AM 1.5G simulated sunlight, 100 mW cm-2; photocurrent density at 1.23 V vs RHE

Electrochemistry ApplicationLinear sweep

LSV

2023 · Metal-Organic Framework Glass Catalysts from Melting Glass-Forming Cobalt-Based Zeolitic Imidazolate Framework for Boosting Photoelectrochemical Water Oxidation

Co-agZIF-62/NiO/Fe2O3 photoanode · Electrode · 1 M NaOH electrolyte under AM 1.5G simulated sunlight, 100 mW cm-2

Electrochemistry ApplicationLinear sweep

LSV

2023 · Metal-Organic Framework Glass Catalysts from Melting Glass-Forming Cobalt-Based Zeolitic Imidazolate Framework for Boosting Photoelectrochemical Water Oxidation

Co-agZIF-62/NiO/WO3 photoanode · Electrode · 0.5 M Na2SO4 electrolyte under AM 1.5G simulated sunlight, 100 mW cm-2

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · Microscopic Origin of Electrochemical Capacitance in Metal-Organic Frameworks

Composite Cu3(HHTP)2 freestanding electrode film · Electrode · Three-electrode cell at 1 mV s^-1, scanned to +0.5 V vs OCV, -0.5 V vs OCV and across the full window.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode CV, GCD, EIS, rate capability, cycling and bending tests for all-solid-state supercapacitor

2023 · Microwave discharge for rapid introduction of bimetallic-synergistic configuration to conductive catecholate toward long-term supercapacitor

Symmetric all-solid-state supercapacitor based on Zn,Ni-CAT-T4 · Electrode · Zn,Ni-CAT-T4 used as both electrodes; CV from 1 to 100 mV s-1; GCD at multiple current densities; cycling at 2 mA cm-2 for 10000 cycles.

Electrochemistry ApplicationCyclic voltammetry

Series/parallel connection CV/GCD and LED demonstration

2023 · Microwave discharge for rapid introduction of bimetallic-synergistic configuration to conductive catecholate toward long-term supercapacitor

Symmetric all-solid-state supercapacitor based on Zn,Ni-CAT-T4 · Electrode · Three Zn,Ni-CAT-based supercapacitors connected in series or parallel; CV at 10 mV s-1 and GCD at 0.5 mA cm-2; charged to 1.5 V for LED.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate analysis using Dunn theory

2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks

Bi(HHTP) 4/8/12/20 h carbon-cloth electrode series · Electrode · CV profiles at 5-100 mV s^-1; log i versus log v fitted for oxidation peaks; capacitive contribution ratios estimated as a function of scan rate.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV and galvanostatic charge-discharge

2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks

Bi(HHTP) 4/8/12/20 h carbon-cloth electrode series · Electrode · 3 M KOH electrolyte; Hg/HgO reference and Pt counter electrode; CV at 20 mV s^-1 and GCD at 1 A g^-1 for specific capacitance.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode supercapacitor CV, GCD, rate and cycling tests

2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks

Bi(HHTP) 12 h carbon-cloth electrode · Electrode · Ni(OH)2 positive electrode, Bi(HHTP) negative electrode, 6 M KOH electrolyte; positive:negative active-material mass ratio 1:3.

Electrochemistry ApplicationCyclic voltammetryDifferential pulse

EIS, CV, and DPV comparison of sole-ligand Cu-MOF aptasensors

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Cu-BDC-, Cu-H3BTC-, and Cu-H4EBTC-based aptasensor controls · Electrode · Cu-BDC-, Cu-H3BTC-, Cu-H4EBTC-, and ML-Cu2O@Cu-MOF-based aptasensors compared through construction stages and S. aureus detection.

Electrochemistry ApplicationCyclic voltammetryDifferential pulse

Cyclic voltammetry (CV) and differential pulse voltammetry (DPV)

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Apt/ML-Cu2O@Cu-MOF/AE aptasensor · Electrode · Construction-stage redox-current response in 0.1 M PBS containing ferri/ferrocyanide; S. aureus concentration 10 CFU mL-1 for final detection stage. SI S1.6 reports DPV -0.2 to 0.6 V, 0.01 V increment, 0.05 V amplitude, 0.05 s pulse width; CV from -0.2 to 0.8 V.

Sensing ApplicationDifferential pulse

DPV calibration for S. aureus detection

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Apt/ML-Cu2O@Cu-MOF/AE aptasensor · Electrode · S. aureus concentrations 10 to 1e8 CFU mL-1; 0.1 M PBS pH 7.4 containing 5 mM [Fe(CN)6]3-/4-; n = 3 error bars for calibration.

Sensing ApplicationDifferential pulse

EIS and DPV optimisation

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Apt/ML-Cu2O@Cu-MOF/AE aptasensor · Electrode · Optimised ML-Cu2O@Cu-MOF dosage, aptamer concentration, S. aureus binding time, pH, and aptamer anchoring time.

Sensing ApplicationDifferential pulse

EIS and DPV recovery tests in spiked food samples

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Apt/ML-Cu2O@Cu-MOF/AE aptasensor · Electrode · Milk, honey, and biscuit samples treated according to GB4789.15-2016, spiked with S. aureus, and compared with plate count method; SI text lists Tables S3-S8 captions but not their numeric bodies.

Sensing ApplicationDifferential pulse

EIS and DPV selectivity, reproducibility, storage-stability, and regeneration tests

2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework

Apt/ML-Cu2O@Cu-MOF/AE aptasensor · Electrode · Interferents: E. coli, Salmonella enterica, Bacillus subtilis, and Salmonella paratyphi A at 1000 CFU mL-1, plus mixture with S. aureus; reproducibility with five aptasensors; storage for 15 days at 4 C; regeneration in NaOH.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in two-electrode BSH

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H10/rGO battery-supercapacitor hybrid · Electrode · Potential windows 0.8-1.1 V at 20 mV/s; scan rates 10-100 mV/s at 1.0 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H10 battery-type electrode · Electrode · 20 mV/s, Pt counter electrode, Ag/AgCl reference electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H15 battery-type electrode · Electrode · 20 mV/s, Pt counter electrode, Ag/AgCl reference electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H2 battery-type electrode · Electrode · 20 mV/s, Pt counter electrode, Ag/AgCl reference electrode, 3 M KOH electrolyte inferred from electrode/BSH section.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H20 battery-type electrode · Electrode · 20 mV/s, Pt counter electrode, Ag/AgCl reference electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode cell

2023 · Novel insights of structure evolution between ZIF and hydroxide via controlled doses of ammonium bifluoride and applications on battery supercapacitor hybrids

M-H5 battery-type electrode · Electrode · 20 mV/s, Pt counter electrode, Ag/AgCl reference electrode

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries

Cu-BTA-H composite cathode nanosheet · Electrode · 0.3-1.6 V vs Zn2+/Zn at 0.1 mV s^-1 in 2.5 M ZnSO4 aqueous electrolyte.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis and pseudocapacitive contribution

2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries

Cu-BTA-H composite cathode nanosheet · Electrode · CV at scan rates 0.1, 0.2, 0.5, 1.0 and 2.0 mV s^-1; b values and capacitive/diffusion contributions calculated.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis and pseudocapacitive contribution

2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries

Ni-BTA-H composite cathode nanosheet · Electrode · CV at scan rates 0.1, 0.2, 0.5, 1.0 and 2.0 mV s^-1; b values and capacitive/diffusion contributions calculated.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries

Ni-BTA-H composite cathode nanosheet · Electrode · 0.3-1.6 V vs Zn2+/Zn at 0.1 mV s^-1 in 2.5 M ZnSO4 aqueous electrolyte.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry and b-value analysis

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Flake-like Cu3(HHTP)2 composite electrode · Electrode · Potential window 1.7-3.5 V vs Li|Li+; scan rates 0.5, 1, 2, 5, 10, 20, 50 and 100 mV s-1 after initial cycles.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry and b-value analysis

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Rod-like Cu3(HHTP)2 composite electrode · Electrode · Potential window 1.7-3.5 V vs Li|Li+; scan rates 0.5, 1, 2, 5, 10, 20, 50 and 100 mV s-1 after initial cycles.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry potential-window optimisation

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Flake-like Cu3(HHTP)2 composite electrode · Electrode · Cu3(HHTP)2 || Li metal cells; 1 M LiTFSI in EC:EMC 3:7; scan rate 0.5 mV s-1; varied upper and lower cut-off potentials.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry potential-window optimisation

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Rod-like Cu3(HHTP)2 composite electrode · Electrode · Cu3(HHTP)2 || Li metal cells; 1 M LiTFSI in EC:EMC 3:7; scan rate 0.5 mV s-1; varied upper and lower cut-off potentials.

Diffraction StructureCyclic voltammetry

In situ XRD during cyclic voltammetry

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Flake-like Cu3(HHTP)2 composite electrode · Electrode · Self-designed in situ cell; electrode on Be disc; Li metal negative electrode; Whatman separator with 200 uL electrolyte; 0.05 mV s-1, 1.7-3.5 V; XRD 8-35 deg 2theta with 90 min scans.

Electrochemistry ApplicationCyclic voltammetry

CV kinetics analysis

2023 · Oxidatively Doped Tetrathiafulvalene-Based Metal-Organic Frameworks for High Specific Energy of Supercapatteries

1-ox electrode · Electrode · Scan rates 5 to 100 mV s^-1; separation of capacitive and diffusive current contributions.

Electrochemistry ApplicationCyclic voltammetry

Asymmetric supercapattery CV/GCD/Ragone/cycling tests

2023 · Oxidatively Doped Tetrathiafulvalene-Based Metal-Organic Frameworks for High Specific Energy of Supercapatteries

AC||1-ox supercapattery · Electrode · AC negatrode, 1-ox positrode, 6.0 M KOH; 0-1.7 V device window; GCD 1 to 10 A g^-1; cycling at 5 A g^-1.

Electrochemistry ApplicationCyclic voltammetry

Asymmetric supercapattery CV/GCD/Ragone/cycling tests

2023 · Oxidatively Doped Tetrathiafulvalene-Based Metal-Organic Frameworks for High Specific Energy of Supercapatteries

AC||2-ox supercapattery · Electrode · AC negatrode, 2-ox positrode, 6.0 M KOH; 0-1.7 V device window; GCD 1 to 10 A g^-1; cycling at 5 A g^-1.

Electrochemistry ApplicationLinear sweep

OER LSV, Tafel, EIS, double-layer capacitance and chronoamperometric/cyclic stability

2023 · Partial selenium surface modulation of metal organic framework assisted cobalt sulfide hollow spheres for high performance bifunctional oxygen electrocatalysis and rechargeable zinc-air batteries

Se-doped MOF CoS2 hollow spheres on carbon cloth · Electrode · 1.0 M KOH, three-electrode setup, room temperature, Ag/AgCl reference calibrated to RHE, Pt foil counter, LSV 5 mV s-1, CV stability 50 mV s-1, EIS 0.01 Hz to 100 kHz.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

ORR CV, LSV, RDE, Tafel, Koutecky-Levich, cycling stability and chronoamperometry

2023 · Partial selenium surface modulation of metal organic framework assisted cobalt sulfide hollow spheres for high performance bifunctional oxygen electrocatalysis and rechargeable zinc-air batteries

Se-doped MOF CoS2 hollow spheres on RDE · Electrode · 0.1 M KOH, O2- or N2-saturated, RDE 100-2500 rpm, LSV 5 mV s-1, 1600 rpm durability and methanol tolerance tests.

Electrical TransportCyclic voltammetry

Cyclic voltammetry used as conductivity evidence

2023 · Piperazine-linked metal covalent organic framework-coated fibers for efficient electro-enhanced solid-phase microextraction of chlorophenols

CuPc-MCOF-coated stainless steel fibre · Electrode · Reversible Fe2+/Fe3+ redox system; solution containing 0.01 mM [Fe(CN)6]3+/4+ and 0.1 M KCl.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of asymmetric supercapacitor

2023 · Reconstruction of Co/Ni metal-organic-framework based electrode materials with excellent conductivity and integral stability via extended hydrothermal treatment toward improved performance of supercapacitors

Co/Ni-MOF@CC-12//AC ASC · Electrode · Two-electrode ASC on LAND CT2001A; voltage windows up to 1.7 V at 5 mV s-1; scan rates 5-50 mV s-1 at selected 0-1.6 V window.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CHI 660E, three-electrode)

2023 · Reconstruction of Co/Ni metal-organic-framework based electrode materials with excellent conductivity and integral stability via extended hydrothermal treatment toward improved performance of supercapacitors

Co/Ni-MOF@CC-12 · Electrode · Working electrode: as-obtained sample; counter: Pt wire; reference: Ag/AgCl; electrolyte: 2 M KOH; potential range -0.2 to 0.6 V; scan rates 5-20 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

two-electrode supercapattery CV, GCD, Ragone and cycling

2023 · Redox-Active Two-Dimensional Tetrathiafulvalene-Copper Metal-Organic Framework with Boosted Electrochemical Performances for Supercapatteries

AC||1-ox supercapattery device · Electrode · AC||1-ox device in 6 M KOH; potential window 0-1.7 V; scan rates 10-100 mV s^-1; GCD 1-10 A g^-1; cycling at 5 A g^-1 for 5000 cycles.

Electrochemistry ApplicationCyclic voltammetry

two-electrode supercapattery CV, GCD and cycling

2023 · Redox-Active Two-Dimensional Tetrathiafulvalene-Copper Metal-Organic Framework with Boosted Electrochemical Performances for Supercapatteries

AC||1-ox' supercapattery device · Electrode · AC||1-ox' device in 6 M KOH; scan rates 10-100 mV s^-1; GCD 1-10 A g^-1; cycling at 5 A g^-1 for 5000 cycles.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD and EIS

2023 · Redox-Active Two-Dimensional Tetrathiafulvalene-Copper Metal-Organic Framework with Boosted Electrochemical Performances for Supercapatteries

1-ox working electrode · Electrode · Three-electrode configuration in 6 M KOH electrolyte at room temperature; calomel reference and Pt counter electrode; CV 10-100 mV s^-1; GCD 1-10 A g^-1; EIS 0.1 Hz-100 kHz.

Electrochemistry ApplicationCyclic voltammetry

Stepwise CV, EIS and ECL characterisation of biosensor fabrication

2023 · Ruthenium(II) complex-grafted conductive metal-organic frameworks with conductivity- and confinement-enhanced electrochemiluminescence for ultrasensitive biosensing application

Fc-S1/HT/aptamer/AuNPs/Ru@Ni3(HITP)2/GCE biosensor · Electrode · CV and EIS in 5 mM [Fe(CN)6]3-/4-; ECL in PBS pH 7.0 with 10 uL TPrA for bare GCE, Ru@Ni3(HITP)2/GCE, AuNPs/Ru@Ni3(HITP)2/GCE, aptamer/HT/Fc-S1-modified electrodes, and TB/Exo I-treated biosensor.

Electrochemistry ApplicationCyclic voltammetry

ECL-potential profiles and cyclic voltammetry

2023 · Ruthenium(II) complex-grafted conductive metal-organic frameworks with conductivity- and confinement-enhanced electrochemiluminescence for ultrasensitive biosensing application

Ni3(HITP)2/GCE · Electrode · Ni3(HITP)2/GCE and bare GCE in PBS (0.1 M, pH 7.0) containing Ru(bpydc)3 (1 uM) and TPrA (5 mM); CV in TPrA solution (5 mM).

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry-derived double-layer capacitance

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · CV collected between 0.425 and 0.625 V vs RHE at 50-500 mV s^-1 in 1.0 M KOH.

Electrochemistry ApplicationLinear sweep

HER growth-time optimisation LSV

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · HER LSV in 1.0 M KOH for 0, 1, 3, 6 and 12 h MOF growth time, phosphated at 550 C.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · HER LSV from 0.1 to -0.6 V vs RHE in 1.0 M KOH using Hg/HgO reference and graphite counter electrode.

Electrochemistry ApplicationLinear sweep

HER phosphating-temperature optimisation LSV and EIS

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · HER LSV and Nyquist plots in 1.0 M KOH for phosphating at 350, 450, 550 and 650 C.

Electrochemistry ApplicationLinear sweep

mass-normalised HER and OER LSV

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · Mass-normalised polarisation curves of Co/CoP/NC/CoF and Exo-Co/CoP/NC/CoF using active component mass loading.

Electrochemistry ApplicationLinear sweep

OER growth-time optimisation LSV and EIS

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · OER LSV and Nyquist plots in 1.0 M KOH for 0, 1, 3, 6 and 12 h MOF growth time.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · OER LSV from 1.0 to 2.0 V vs RHE in 1.0 M KOH using same three-electrode setup as HER.

Electrochemistry ApplicationLinear sweep

OER phosphating-temperature optimisation LSV and EIS

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF-550 / 6 h · Electrode · OER LSV and Nyquist plots in 1.0 M KOH for phosphating at 350, 450, 550 and 650 C.

Electrochemistry ApplicationLinear sweep

overall water splitting two-electrode LSV

2023 · Self-supporting electrocatalyst constructed from in-situ transformation of Co(OH)2 to metal-organic framework to Co/CoP/NC nanosheets for high-current-density water splitting

Co/CoP/NC/CoF||Co/CoP/NC/CoF electrolyzer · Electrode · Co/CoP/NC/CoF used as both anode and cathode in 1.0 M KOH; compared with Pt/C/CoF||RuO2/CoF.

Sensing ApplicationSquare wave

square wave voltammetry calibration

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Bare GCE · Electrode · SWV paracetamol calibration in the same 10-50 uM range as Cu-BTC/GCE.

Sensing ApplicationSquare wave

square wave voltammetry calibration

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · SWV in potential range +200 to +700 mV; paracetamol concentration 10-50 uM for calibration.

Electrical TransportCyclic voltammetry

cyclic voltammetry of intrinsic Cu redox transitions

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · CVs recorded in 100 mM KCl over -600 mV to +600 mV vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

chronoamperometry and CV optimisation

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · Chronoamperometry at -1.0, -1.1, -1.2 and -1.3 V vs Ag/AgCl for 5 min, followed by CV in 100 mM KCl.

Electrical TransportCyclic voltammetry

cyclic voltammetry with ferri/ferrocyanide redox probe

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · 100 mM KCl containing 5 mM K3[Fe(CN)6]/K4[Fe(CN)6], scan rate 50 mV s-1; Laviron scan-rate series 10-200 mV s-1 for Ks.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry during electrodeposition

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · Electrodeposition solution in DMF with 10 mM Et3N, 15 mM H3BTC and 10 mM CuCl2.2H2O; Ag/AgCl reference, Pt counter, GCE working electrode.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry for paracetamol oxidation

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Bare GCE · Electrode · 1 mM paracetamol in PBS buffer at pH 7.4, scan rate 50 mV s-1.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry for paracetamol oxidation

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · 1 mM paracetamol in PBS buffer at pH 7.4, scan rate 50 mV s-1.

Sensing ApplicationCyclic voltammetrySquare wave

CV/SWV pH dependence for paracetamol oxidation

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · 1 mM paracetamol solutions at pH 5 to 9; SI Fig. 5S compares Cu-BTC/GCE and GCE.

Sensing ApplicationSquare wave

real-sample SWV assay

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, optimised 5 min film · Electrode · 1 mg traditional painkiller powder dissolved in 10 mL PBS buffer; SWV recorded on Cu-BTC/GCE.

Sensing ApplicationSquare wave

SWV calibration versus synthesis time

2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol

Cu-BTC/GCE, 15 min film · Electrode · SI Fig. 8S compares GCE, Cu-BTC 5 minutes and Cu-BTC 15 minutes for paracetamol calibration.

Electrochemistry ApplicationCyclic voltammetry

scan-rate CV and capacitive contribution analysis

2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance

6OH-HATN electrode · Electrode · 6OH-HATN and HATN controls at 0.2-1.0 mV s^-1; b-value fitting and capacitive contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance

HATN electrode · Electrode · HATN and 6OH-HATN control electrodes, 0.1 mV s^-1, 0.01-3.0 V vs Li+/Li.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance

Cu-HATN electrode · Electrode · Cu-HATN electrode, 0.1 mV s^-1, 0.01-3.0 V vs Li+/Li.

Electrochemistry ApplicationCyclic voltammetry

scan-rate CV and capacitive contribution analysis

2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance

Cu-HATN electrode · Electrode · CV at 0.2-1.0 mV s^-1; b-value fitting and i=k1v+k2v^1/2 analysis.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD, three-electrode AC control

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Activated-carbon electrode · Electrode · Activated carbon capacitive-electrode control prior to hybrid device fabrication.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), two-electrode hybrid device

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Cu-MOF//AC hybrid supercapacitor · Electrode · Cu-MOF//AC device; 0-1.6 V optimised potential window; scan rates shown 3-100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode cell

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Cu-MOF slurry electrode on nickel foam · Electrode · 3 M KOH electrolyte; Pt wire counter; Hg/HgO reference; nickel foam working electrode; potential window 0-0.7 V; scan rates shown 3-50 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), two-electrode hybrid device

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Ni-MOF//AC hybrid supercapacitor · Electrode · Ni-MOF//AC device; 0-1.6 V optimised potential window; scan rates shown 3-100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode cell

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Ni-MOF slurry electrode on nickel foam · Electrode · 3 M KOH electrolyte; Pt wire counter; Hg/HgO reference; nickel foam working electrode; potential window 0-0.7 V; scan rates shown 3-50 mV/s.

Computational ModellingCyclic voltammetry

Dunn's model fit to CV currents

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Cu-MOF//AC hybrid supercapacitor · Electrode · Regression parameters k1 and k2 and separated capacitive/diffusive currents at scan rates including 3, 60 and 100 mV/s.

Computational ModellingCyclic voltammetry

Dunn's model fit to CV currents

2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids

Ni-MOF//AC hybrid supercapacitor · Electrode · Regression parameters k1 and k2 and separated capacitive/diffusive currents at scan rates including 3, 60 and 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD, rate and cycling tests for AC cathode

2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors

Commercial AC cathode · Electrode · AC cathode in sodium-ion half cells; voltage window 1.5-4.0 V for cycling.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors

MSC SIB anode electrode · Electrode · SIB half cell, voltage 0.01-3.0 V, scan rate 0.1 mV s-1, first three cycles.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate CV kinetic analysis

2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors

MSC SIB anode electrode · Electrode · CV scan rates 0.1-10 mV s-1; b-value and capacitive/diffusion contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

Full-cell CV, GCD, Ragone and cycling tests

2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors

AC//MSC sodium-ion hybrid capacitor full cell · Electrode · AC//MSC sodium-ion hybrid capacitor; voltage 0.01-4.0 V; active material mass ratio MSC:AC = 1:2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries

Ni-mba-K lithium-ion battery working electrode · Electrode · CR2032 Li-ion cell, potential range 0.01-3.0 V vs Li+/Li, scan rates in Fig. 4a from 0.2 to 1.0 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries

Ni-mba-Na lithium-ion battery working electrode · Electrode · CR2032 Li-ion cell, potential range 0.01-3.0 V vs Li+/Li, scan rates in Fig. 3a from 0.2 to 1.0 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Device cyclic voltammetry

2023 · The rise of 2D conductive metal-organic framework: Cu3(HHTP)2 d-π MOF for integrated battery-supercapacitor hybrids

Asymmetric Cu3(HHTP)2//AC hybrid device · Electrode · Asymmetric Cu3(HHTP)2//AC device; scan rates 3-100 mV/s; potential window up to 1.6 V.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD control measurements of activated carbon electrode

2023 · The rise of 2D conductive metal-organic framework: Cu3(HHTP)2 d-π MOF for integrated battery-supercapacitor hybrids

Activated-carbon composite electrode · Electrode · Separate AC electrode measurement before asymmetric device fabrication; compared with Cu3(HHTP)2 electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with Gamry REF-3000 potentiostat

2023 · The rise of 2D conductive metal-organic framework: Cu3(HHTP)2 d-π MOF for integrated battery-supercapacitor hybrids

Cu3(HHTP)2 composite electrode for three-electrode tests · Electrode · Three-electrode assembly in 1 M KOH aqueous electrolyte; scan rates 3-50 mV/s; Hg/HgO reference, Pt counter electrode.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Co-MOF-74/Li-IL electrolyte pellet · Pellet · 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Cu-MOF-74/Li-IL electrolyte pellet · Pellet · 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@HKUST-1/Li-IL electrolyte pellet · Pellet · Cu foil or stainless-steel working electrode, Li foil counter/reference; 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Mg-MOF-74/Li-IL electrolyte pellet · Pellet · Cu foil or stainless-steel working electrode, Li foil counter/reference; 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Mn-MOF-74/Li-IL electrolyte pellet · Pellet · 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@MOF-5/Li-IL electrolyte pellet · Pellet · Cu foil or stainless-steel working electrode, Li foil counter/reference; 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Ni-MOF-74/Li-IL electrolyte pellet · Pellet · 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties

Li@Zn-MOF-74/Li-IL electrolyte pellet, 1:1.5 · Pellet · Cu foil or stainless-steel working electrode, Li foil counter/reference; 0.5 mV s-1 at 30 C; +/-5 uA cm-2 threshold.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · LEV oxidation in 0.1 M PBS at pH 5.5; Fig. 3 caption reports 100 uM LEV at 100 mV/s.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · DPV in 0.1 M PBS at pH 5.5 for LEV concentrations from 0.05 to 600 uM; scan rate 100 mV/s reported in Fig. 4 caption.

Electrochemistry ApplicationCyclic voltammetry

CV and Randles-Sevcik analysis

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · Effective electroactive surface areas measured in 1.0 mM [Fe(CN)6]3-/4- with 0.1 M KCl at scan rates from 40 to 200 mV/s.

Sensing ApplicationCyclic voltammetryDifferential pulse

DPV/CV optimisation

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · Optimisation of COF loading, Tri-AgNP loading, poly-L-cysteine cycles, pH, and scan rate for LEV response.

Sensing ApplicationDifferential pulse

standard addition DPV in human serum and urine

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · Serum centrifuged and diluted in 0.1 M PBS pH 5.5; urine filtered with 0.22 um membrane and diluted; spiked with 50.0 or 100 uM LEV.

Sensing ApplicationDifferential pulse

standard addition DPV in low-dilution human serum and urine

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · Human blood serum and urine samples treated according to Inorganic Chemistry 60 (2021) 6585-6599 and diluted 20 times; spiked with 50.0 or 100 uM LEV; n = 3.

Sensing ApplicationDifferential pulse

DPV repeatability, reproducibility, stability and selectivity tests

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF/Poly-L-Cys/Tri-AgNP/GCE · Electrode · Five separately fabricated electrodes; one electrode measured 10 times; once-daily DPV for 10 days; interferences tested against 60 uM LEV.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV and galvanostatic charge/discharge in Swagelok cell

2023 · Wavy Two-Dimensional Conjugated Metal-Organic Framework with Metallic Charge Transport

Cu3(HFcHBC)2 working electrode composite · Electrode · Cu3(HFcHBC)2 composite working electrode; over-capacitive activated carbon counter electrode; glass fibre separator; aqueous 5 M LiCl electrolyte; Ag/AgCl reference.

Electrical TransportCyclic voltammetry

CV and EIS using ferri/ferrocyanide redox probe

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · 5 mmol L^-1 K3[Fe(CN)6]/K4[Fe(CN)6] solution; Co-Ni-MOFs-1%/GCE compared with Ni-MOFs/GCE and bare GCE.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry ratio optimisation

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs ratio-series/GCE electrodes · Electrode · Co-Ni-MOFs-0.1%/GCE, Co-Ni-MOFs-1%/GCE, Co-Ni-MOFs-2%/GCE and Co-Ni-MOFs-5%/GCE tested in 0.1 mol L^-1 PBS, pH 2.5, containing 0.1 mmol L^-1 L-tryptophan.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry for L-tryptophan oxidation

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · 0.1 mmol L^-1 L-tryptophan in 0.1 mol L^-1 PBS, pH 2.5; comparison of Co-Ni-MOFs-1%/GCE, Ni-MOFs/GCE and bare GCE.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry calibration

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · 0.1 mol L^-1 PBS, pH 2.5, containing L-tryptophan concentrations from 0.01 to 300 umol L^-1.

Sensing ApplicationDifferential pulse

DPV interference test

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · Interferents tested against detection of 0.1 mmol L^-1 L-tryptophan.

Sensing ApplicationDifferential pulse

DPV pH optimisation

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · 0.1 mmol L^-1 L-tryptophan in 0.1 mol L^-1 PBS at pH 1, 2, 2.5, 3, 4 and 5.

Sensing ApplicationDifferential pulse

DPV recovery and mouse plasma analysis

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · Simulated samples at 8, 60 and 100 umol L^-1; mouse plasma diluted 100-fold with pH 2.5 PBS and centrifuged at 12000 rpm before detection.

Sensing ApplicationCyclic voltammetry

Scan-rate dependent cyclic voltammetry

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · 0.1 mol L^-1 PBS with 100 umol L^-1 L-tryptophan; scan rates 20-500 mV s^-1.

Sensing ApplicationDifferential pulse

Long-term DPV stability

2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan

Co-Ni-MOFs-1%/GCE · Electrode · DPV current of 0.1 mmol L^-1 L-tryptophan recorded every three days, five times, over about two weeks.

Electrochemistry ApplicationCyclic voltammetry

Accelerated ageing test by cyclic voltammetry

2022 · A 2D copper-imidazolate framework without thermal treatment as an efficient ORR electrocatalyst for Zn-air batteries

GCE/2DCIF electrocatalyst electrode · Electrode · 1000 continuous potential cycles in O2-saturated 0.1 M KOH; static and 2500 rpm rotating conditions

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Mg) CV mesh electrode · Electrode · Three-electrode setup; Pt-wire counter electrode; silver wire pseudo-reference; dry DMF; 0.1 M TBAPF6; scan rate 0.1 V/s; argon; ferrocene added after CV for reference

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Ni) CV mesh electrode · Electrode · Three-electrode setup; Pt-wire counter electrode; silver wire pseudo-reference; dry DMF; 0.1 M TBAPF6; scan rate 0.1 V/s; argon; ferrocene added after CV for reference

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Zn) CV mesh electrode · Electrode · Three-electrode setup; Pt-wire counter electrode; silver wire pseudo-reference; dry DMF; 0.1 M TBAPF6; scan rate 0.1 V/s; argon; ferrocene added after CV for reference

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · A novel Sn-based coordination polymer with high-efficiency and ultrafast lithium storage

Sn-DHTPA composite LIB electrode · Electrode · Initial five cycles at 0.2 mV s^-1 unless otherwise noted; voltage window 0.01-3 V vs Li+/Li

Electrochemistry ApplicationCyclic voltammetry

CV in anhydrous CH3CN/[nBu4N][PF6]

2022 · A one-dimensional conductive metal-organic framework with extended π-d conjugated nanoribbon layers

DDA-Cu MOF crystals / bulk precipitate · Powder · glassy carbon working electrode; Ag/AgCl reference; Pt counter; 100 mV/s for selected curves

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in 3 M KOH

2022 · A one-dimensional conductive metal-organic framework with extended π-d conjugated nanoribbon layers

DDA-Cu composite electrode on nickel foam · Electrode · three-electrode and symmetric supercapacitor; DDA-Cu/carbon black/PTFE electrode

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode Swagelok cell

2022 · A Rationally Designed Iron–Dihydroxybenzoquinone Metal–Organic Framework as Practical Cathode Material for Rechargeable Batteries

Fe2(DHBQ)3 electrode A/default (AM/KB/PTFE = 6:3:1, low loading) · Electrode · 1.5-3.8 V vs Li+/Li; scan rates 0.05, 0.1, 0.2, 0.5, 1.0 mV s-1; Fe2(DHBQ)3 working electrode, Li reference/counter.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2022 · A stable lanthanum hydroxamate metal-organic framework with radical character and electrical conductivity

La-ONDI-DMA single crystals · Single Crystal · Three-electrode cell at room temperature; about 8 mg La-ONDI abraded with ethanol, water and 5 wt% Nafion, drop-cast on glassy carbon; Pt wire counter, Ag/Ag+ reference; 0.1 M [(n-Bu)4N]PF6 in acetonitrile under N2; referenced to Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · 2.0 uM luteolin in 0.1 M Britton-Robinson buffer, pH 3.0; scan rate 100 mV/s.

Sensing ApplicationDifferential pulse

differential pulse voltammetry (DPV) calibration

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · Luteolin concentrations 2.0 nM, 4.0 nM, 10.0 nM, 20.0 nM, 50.0 nM, 0.1 uM, 0.2 uM, 0.4 uM, 0.6 uM, 0.8 uM and 1.0 uM in 0.1 M BR buffer, pH 3.0.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry (DPV)

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · 2.0 uM luteolin on bare GCE, CoNi-MOF/GCE and Ag-CoNi-MOF/GCE.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate kinetics and Laviron analysis

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · CV curves at scan rates 20-400 mV/s; linear-current analysis over 20-400 mV/s; log(v)-potential analysis over 160-400 mV/s.

Electrochemistry ApplicationCyclic voltammetry

CV pH optimisation

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · 2 uM luteolin on Ag-CoNi-MOF/GCE with pH varied from 2.0 to 6.0.

Sensing ApplicationDifferential pulse

DPV reproducibility

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · Six different Ag-CoNi-MOF sensors used to determine 1.0 uM luteolin by DPV.

Sensing ApplicationDifferential pulse

intermittent DPV stability test

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · Current for 1.0 uM luteolin assessed every 2 days over 20 days.

Sensing ApplicationDifferential pulse

DPV standard addition in human urine

2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin

Ag-CoNi-MOF/GCE · Electrode · Human urine diluted 10-fold with BR buffer pH 3.0; luteolin added at 0, 50, 100 and 500 nM; n = 4.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

Ni-HTP nanowire-array electrode on carbon paper · Electrode · Li-O2 cell cathode; 2.0-4.0 V; 0.10 mV s-1; room temperature

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

NiRu-HTP nanowire-array electrode on carbon paper · Electrode · Li-O2 cell cathode; 2.0-4.0 V; 0.10 mV s-1; room temperature

Electrochemistry ApplicationUnspecified subtype

rotating ring disk electrode voltammetry

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

Ni-HTP nanowire-array electrode on carbon paper · Electrode · 1.0 M LiTFSI/G4 electrolyte with O2, 900 rpm, 10 mV s-1

Electrochemistry ApplicationUnspecified subtype

rotating ring disk electrode voltammetry

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

NiRu-HTP nanowire-array electrode on carbon paper · Electrode · 1.0 M LiTFSI/G4 electrolyte with O2, 900 rpm, 10 mV s-1

Electrical TransportCyclic voltammetry

Solid-state DC cyclic voltammetry

2022 · Atomically Precise Integration of Multiple Functional Motifs in Catalytic Metal-Organic Frameworks for Highly Efficient Nitrate Electroreduction

As-synthesised In4 red block crystals/powder · Single Crystal · 3D In-MOF, In4 and In8 compared; In4 Fig. S12 at 400 mV s-1 in 0.1 M LiBF4 in CH3CN.

Electrical TransportCyclic voltammetry

Solid-state DC cyclic voltammetry

2022 · Atomically Precise Integration of Multiple Functional Motifs in Catalytic Metal-Organic Frameworks for Highly Efficient Nitrate Electroreduction

As-synthesised In8 red block crystals/powder · Single Crystal · In8 over four consecutive cycles at 400 mV s-1 in 0.1 M LiBF4 in CH3CN.

Electrochemistry ApplicationLinear sweepSquare wave

LSV and square-wave voltammetry

2022 · Atomically Precise Integration of Multiple Functional Motifs in Catalytic Metal-Organic Frameworks for Highly Efficient Nitrate Electroreduction

In8 catalyst ink on carbon paper electrode · Electrode · pH 1-5 H2SO4 electrolyte with or without 0.5 g L-1 KNO3; optimal comparison at -0.7 V vs RHE.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry concentration response

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · Successive ACM addition from 0 to 280 uM at 50 mV/s in pH 7 electrolyte.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · PB solution at pH 7 with 130 uM ACM; sweep rate 50 mV/s; compared ZIF-67-C/GCE, ZIF-67-A/GCE, ZIF-67-H/GCE, and bare GCE.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry pH study

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · pH 3 to 11; 50 mV/s scan rate; 130 uM ACM.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate study

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · 130 uM ACM in pH 7 at ZIF-67-C/GCE; scan rate varied from 20 to 200 mV/s.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · ACM concentration varied from 0.199 to 1098.31 uM at ZIF-67-C/GCE in pH 7.

Sensing ApplicationDifferential pulse

DPV anti-interference/selectivity test

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · Catechol, dopamine, levofloxacin, ibuprofen, uric acid, nilutamide, aspirin, ciprofloxacin, sodium ions, and flutamide injected at 20-fold higher concentrations than ACM in pH 7.

Sensing ApplicationCyclic voltammetry

CV reproducibility and stability

2022 · Bifunctional 3D-MOF-based nanoprobes for electrochemical sensing and nanozyme enhanced with peroxidase mimicking for colorimetric detection of acetaminophen

ZIF-67-C/GCE modified electrode · Electrode · Five independently chosen ZIF-67-C/GCE electrodes; 130 uM ACM in pH 7 at 50 mV/s. Stability tested on day 1, day 15, and day 30 after storage at 3 C.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

OER durability: post-CV LSV and chronoamperometry

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe1-B-P · Nanosheet · 3000 CV cycles from 1.2 to 1.5 V vs RHE at 100 mV s-1; 20 h chronoamperometry at potential corresponding to 10 mA cm-2.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe1-B · Nanosheet · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe1-B-P · Nanosheet · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe1-P · Powder · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe2-B · Unknown · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe2-B-P · Unknown · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co1Fe2-P · Powder · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co2Fe1-B · Nanosheet · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co2Fe1-B-P · Nanosheet · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co2Fe1-P · Powder · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co-B · Unknown · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co-B-P · Powder · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS

2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution

Co-P · Powder · 1.0 M KOH; room temperature; rotating glassy carbon disk electrode at 1600 rpm; catalyst loading 0.50 mg cm-2; iR compensated.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate analysis, GITT, and EIS

2022 · Conductive Co-based metal organic framework nanostructures for excellent potassium- and lithium-ion storage: kinetics and mechanism studies

Co-CAT MOF LIB anode electrode · Electrode · LIB kinetic analysis from Fig. S13-S15; CV b-values, pseudocapacitive contribution, lithium diffusion coefficient, and EIS before/after cycling.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and galvanostatic discharge-charge

2022 · Conductive Co-based metal organic framework nanostructures for excellent potassium- and lithium-ion storage: kinetics and mechanism studies

Co-CAT MOF PIB anode electrode · Electrode · PIB half-cell, 0.01-3.0 V vs K+/K; CV at 0.1 mV s^-1; galvanostatic curves at 200 mA g^-1.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate analysis

2022 · Conductive Co-based metal organic framework nanostructures for excellent potassium- and lithium-ion storage: kinetics and mechanism studies

Co-CAT MOF PIB anode electrode · Electrode · CV curves at 0.1-2.0 mV s^-1; b-value and pseudocapacitive contribution calculated.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Conductive metal organic framework for ion-selective membrane-free solid-contact potentiometric Cu2+ sensing

ISM-free Cu3(HHTP)2/PVDF-coated GCE solid-contact ion-selective electrode · Electrode · Conventional three-electrode setup in 0.1 M KCl; scan rate 5 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Co-CAT-Carbon Paper · Electrode · Three-electrode cell; 1 M KOH with/without 10 mM HMF; carbon-paper-supported Co-CAT.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Co-CAT-FTO · Electrode · Three-electrode cell; 1 M KOH, then 1 M KOH plus 10 mM HMF; scan rate 20 mV s-1; Ag/AgCl reference converted to RHE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Ni-CAT-Carbon Paper · Electrode · Three-electrode cell; 1 M KOH with/without 10 mM HMF; carbon-paper-supported Ni-CAT.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Ni-CAT-FTO · Electrode · Three-electrode cell; 1 M KOH, then 1 M KOH plus 10 mM HMF; scan rate 20 mV s-1; Ag/AgCl reference converted to RHE.

Electrical TransportCyclic voltammetry

CV scan-rate dependence

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Co-CAT-FTO · Electrode · 1 M KOH electrolyte, applied potential from 0.82 to 1.42 V vs RHE; scan-rate series used as charge-transfer/conductivity proxy.

Electrical TransportCyclic voltammetry

CV scan-rate dependence

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Ni-CAT-FTO · Electrode · 1 M KOH electrolyte, applied potential from 0.82 to 1.42 V vs RHE; scan-rate series used as charge-transfer/conductivity proxy.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry Tafel analysis

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Co-CAT powder on glassy carbon disk · Electrode · Rotating disk configuration at 1600 rpm; LSV scan 0.5 mV/s; HMF transport enhanced.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry Tafel analysis

2022 · Conductive Metal-Organic Frameworks Bearing M−O4 Active Sites as Highly Active Biomass Valorization Electrocatalysts

Ni-CAT powder on glassy carbon disk · Electrode · Rotating disk configuration at 1600 rpm; LSV scan 0.5 mV/s; HMF transport enhanced.

Electrochemistry ApplicationCyclic voltammetry

CV, EIS and ECL responses during electrode assembly

2022 · Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform

NiCo-HHTP/PtNP/H1/MCH biosensor electrode · Electrode · CV and EIS in 5 mM [Fe(CN)6]3-/4- solution for bare GCE through H3-Fc/S1/MCH/H1/PtNPs/NiCo-HHTP/GCE; ECL response tracked during fabrication.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

CuTOTP-OC2 drop-cast glassy-carbon CV electrode · Electrode · CuTOTP-OC2 drop-cast on glassy carbon; 0.05 M NaClO4 in acetonitrile, N2-filled glovebox, Pt counter, Ag pseudo-reference, 10 mV/s.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD of activated carbon negative electrode

2022 · Construction of sulfur vacancies enriched hollow zinc cobalt bimetallic sulfides for high-performance supercapacitors

activated carbon negative electrode · Electrode · AC tested as negative electrode for HSC; CV rectangular and GCD linear; 3 M KOH.

Electrochemistry ApplicationCyclic voltammetry

Hybrid supercapacitor CV and GCD

2022 · Construction of sulfur vacancies enriched hollow zinc cobalt bimetallic sulfides for high-performance supercapacitors

Zn0.3Co2.7S4//AC aqueous hybrid supercapacitor · Electrode · Zn0.3Co2.7S4//AC device in 3 M KOH; operating voltage window selected as 0-1.6 V; CV at different windows and scan rates, GCD at 1-10 A g-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in a three-electrode cell

2022 · Construction of sulfur vacancies enriched hollow zinc cobalt bimetallic sulfides for high-performance supercapacitors

Zn0.3Co2.7S4 working electrode on nickel foam · Electrode · CHI 760E workstation; platinum foil counter, SCE reference, 3 M KOH electrolyte; -0.1 to 0.6 V; scan rates 3-50 mV s-1; key figures use 5-40 mV s-1 and 10 mV s-1 comparisons.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2022 · Crystal Structure and Electrochemical and Charge Transfer Properties in Redox-Active Coordination Polymers Based on a Truncated Tetrathiafulvalene Linker

as-synthesised Cd-m-TTFTB red rod-like crystals · Powder · Powder paste on glassy carbon working electrode; 0.1 M LiBF4 in CH3CN/MeCN; scan rate 100 mV/s; potentials versus Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2022 · Crystal Structure and Electrochemical and Charge Transfer Properties in Redox-Active Coordination Polymers Based on a Truncated Tetrathiafulvalene Linker

as-synthesised Zn-m-TTFTB red rod-like crystals · Powder · Powder paste on glassy carbon working electrode; 0.1 M LiBF4 in CH3CN/MeCN; scan rate 100 mV/s; potentials versus Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance-derived ECSA

2022 · Defect Engineering to Tailor Metal Vacancies in 2D Conductive Metal-Organic Frameworks: An Example in Electrochemical Sensing

Cu-BHT film prepared at pH 2 · Thin Film · Non-Faradaic potential range 0.52-0.60 V vs RHE; scan rates 10, 20, 30, 40, 50, and 60 mV s-1.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry of ATCh oxidation at AChE biosensors.

2022 · Dense Conductive Metal-Organic Frameworks as Robust Electrocatalysts for Biosensing

GC/Cu3(THQ)2/AChE biosensor · Electrode · 1 mM ATCh and PBS buffer at GC/AChE, GC/Ni3(HHTP)2/AChE, GC/Cu3(HHTP)2/AChE, and GC/Cu3(THQ)2/AChE in 50 mM PBS, pH 7.4.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry using [Fe(CN)6]4-/3- redox probe.

2022 · Dense Conductive Metal-Organic Frameworks as Robust Electrocatalysts for Biosensing

Comparative pristine cMOF powder series · Powder · 5.0 mM K3Fe(CN)6/K4Fe(CN)6 (1:1) containing 0.1 M KCl; HET inferred from peak separation.

Electrochemistry ApplicationLinear sweep

RRDE ORR linear sweep voltammetry and derived selectivity

2022 · Dissecting π-conjugated covalent-coupling over conductive MOFs toward efficient two-electron oxygen reduction

Cu-HHTP nanorod powder · Powder · O2-saturated 0.1 M KOH; same RRDE ink and loading procedure; LSV at 10 mV s-1; Pt ring collection efficiency N = 0.39 from SI calibration.

Electrochemistry ApplicationLinear sweep

RRDE ORR linear sweep voltammetry and derived selectivity

2022 · Dissecting π-conjugated covalent-coupling over conductive MOFs toward efficient two-electron oxygen reduction

Ni-HITP black powder · Powder · O2-saturated 0.1 M KOH; three-electrode cell; catalyst ink made from 5 mg catalyst, 730 uL water, 250 uL ethanol, 20 uL Nafion; 5 uL on 4 mm RRDE; loading about 0.2 mg cm-2; LSV at 10 mV s-1 after CV cycling.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

EPD-MOF-525 · Thin Film · 0.1 M TBAPF6 in DCM; 100 mV/s scan rate from 0 to 2 V; current density normalised to immersed electrode area

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

EPD-MOF-525 · Thin Film · 0.5 M TBAPF6 in DCM

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

FTO blank CV control · Electrode · FTO blank CV in 0.5 M TBAPF6 in DCM

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

ST-MOF-525 · Thin Film · 0.1 M TBAPF6 in DCM; 100 mV/s scan rate from 0 to 2 V; current density normalised to immersed electrode area

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

ST-MOF-525 · Thin Film · 0.5 M TBAPF6 in DCM

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Does the Mode of Metal-Organic Framework/Electrode Adhesion Determine Rates for Redox-Hopping-Based Charge Transport within Thin-Film Metal-Organic Frameworks?

free TCPP linker in DCM/DMF · Unknown · Free linker in DCM with small amount of DMF; redox-wave assignment

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2022 · Dual nanozyme based on ultrathin 2D conductive MOF nanosheets intergraded with gold nanoparticles for electrochemical biosensing of H2O2 in cancer cells

Au-NPs/Cu-HHTP-NSs/GCE · Electrode · CV in 0.1 M PBS (pH 7.4) containing 5 mM H2O2; scan rate 50 mV s-1 for concentration series.

Electrochemistry ApplicationCyclic voltammetry

Non-faradaic CV for Cdl/ECSA

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

2.8-IrOx@Ni/Co-ZIF-67 / IrOx@Ni/Co-ZIF-67 · Nanosheet · CV curves obtained at scan rates 10, 20, 40, 60 and 80 mV s^-1 in non-Faradaic potential region; Cdl calculated from Delta j versus scan rate.

Electrochemistry ApplicationCyclic voltammetry

Non-faradaic CV for Cdl/ECSA

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Ni/Co-ZIF-67-2 / Ni/Co-ZIF-67 · Nanosheet · CV curves obtained at scan rates 10, 20, 40, 60 and 80 mV s^-1 in non-Faradaic potential region; Cdl calculated from Delta j versus scan rate.

Electrochemistry ApplicationCyclic voltammetry

Non-faradaic CV for Cdl/ECSA

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

ZIF-67 nanosheet powder/control · Nanosheet · CV curves obtained at scan rates 10, 20, 40, 60 and 80 mV s^-1 in non-Faradaic potential region; Cdl calculated from Delta j versus scan rate.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Commercial IrO2 benchmark electrode · Electrode · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

2.8-IrOx@Ni/Co-ZIF-67 / IrOx@Ni/Co-ZIF-67 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV screening for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

1.6-IrOx@Ni/Co-ZIF-67 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV screening for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

6.5-IrOx@Ni/Co-ZIF-67 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Ni/Co-ZIF-67-1 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Ni/Co-ZIF-67-2 / Ni/Co-ZIF-67 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Ni/Co-ZIF-67-3 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

Ni/Co-ZIF-67-4 · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis for OER

2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states

ZIF-67 nanosheet powder/control · Nanosheet · Three-electrode OER testing in 1 M KOH under ambient air; glassy carbon working electrode area 0.196 cm2 loaded with catalyst/Nafion/isopropanol ink at 0.2 mg cm^-2; Pt counter, Ag/AgCl/KCl reference; potentials converted to RHE; LSV scan rate 2 mV s^-1 without iR correction where specified.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage

Ni-HHTP-250 electrode · Electrode · CV in sodium-ion coin cell; first five curves at 0.1 mV s-1; voltage window 0.01-3.0 V vs Na+/Na.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetics analysis

2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage

Ni-HHTP-250 electrode · Electrode · CV scan rates from 0.1 to 1.0 mV s-1; b-values and capacitive/diffusion contributions calculated.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetics analysis

2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage

Ni-HHTP-160 electrode · Electrode · SI Fig. S6 shows CV curves, log(peak current) vs log(scan rate) fits and capacitive/diffusion contribution ratios for comparison electrodes.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetics analysis

2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage

Ni-HHTP-340 electrode · Electrode · SI Fig. S6 shows CV curves, log(peak current) vs log(scan rate) fits and capacitive/diffusion contribution ratios for comparison electrodes.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetics analysis

2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage

pristine Ni-HHTP electrode · Electrode · SI Fig. S6 shows CV curves, log(peak current) vs log(scan rate) fits and capacitive/diffusion contribution ratios for comparison electrodes.

Electrochemistry ApplicationCyclic voltammetry

Symmetric supercapacitor CV, GCD, and EIS with 1 M NEt4BF4/ACN electrolyte

2022 · Enhancing the energy storage performances of metal-organic frameworks by controlling microstructure

A-CuHHTP composite electrode · Electrode · CR2032 SS316 symmetric coin cells; 1 M NEt4BF4 in ACN; CV at 10 mV s^-1 to 1 V; GCD to 1 V over 0.025-1 A g^-1; EIS 1 MHz to 10 mHz at OCV, 10 mV amplitude.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with inorganic probes

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

Ni3(HHTP)2 {100} nanorods on GCE · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with inorganic probes

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

Co3(HHTP)2 {001} oriented film on GCE · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with inorganic probes

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

Co3(HHTP)2 {100} nanorods on GCE · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry on bare GCE

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

bare glassy carbon electrode · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with inorganic probes

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

Ni3(HHTP)2 {001} oriented film on GCE · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry on bare GCE

2022 · Epitaxial Self-Assembly of Interfaces of 2D Metal-Organic Frameworks for Electroanalytical Detection of Neurotransmitters

bare glassy carbon electrode · Electrode

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV), three-electrode cell

2022 · Exploration of Variable Temperature Magnetism and Electrical Properties of a Pyridyl-isonicotinoyl Hydrazone Bridged Three-Dimensional Mn-Metal-Organic Framework with a Thiophene Dicarboxylato Link

compound 1/graphite/PVDF coated glassy carbon electrode · Electrode · Ag/AgCl reference, Pt counter, compound 1/graphite/PVDF on glassy carbon working electrode; 1 M Na2SO4; scan rates 100, 80, 60, 40, 20, 10, 5, 2 mV/s; working potential window selected after full -2.0 to +2.0 V scan

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry gravimetric capacitance

2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF

Cu-THQ-BPY (1:1) drop-cast electrochemical electrode · Electrode · Three-electrode cell: Ag/AgCl reference, Pt wire counter, glassy carbon working electrode, 1 M KOH aqueous electrolyte; CV from -0.3 to -0.9 V at scan rates below 200 mV s-1 and up to 600 mV s-1 for capacitance plots.

SpectroscopyUnspecified subtype

UV-vis-NIR spectroscopy, Tauc analysis, and cyclic-voltammetry-derived LUMO estimate

2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF

Cu-THQ-BPY, Cu2+:BPY feed ratio 1:1 · Powder · MOFs dispersed in isopropyl alcohol for UV-vis-NIR; LUMO measured with 0.01 M Ag/AgNO3 in 0.1 M TBAPF6 acetonitrile reference, Pt counter, glassy carbon working electrode, 0.1 M TBAPF6 acetonitrile electrolyte, Fc/Fc+ reference.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2022 · Hierarchical 3D micro-nanostructures based on in situ deposited bimetallic metal-organic structures on carbon fabric for supercapacitor applications

NZMF powder drop-cast on carbon fabric · Electrode · 1 M KOH, Ag/AgCl reference, Pt mesh counter; -0.3 to 0.3 V vs Ag/AgCl; scan rates reported as 2-200 mV s^-1 in main text and 2-150 mV s^-1 in SI.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2022 · Hierarchical 3D micro-nanostructures based on in situ deposited bimetallic metal-organic structures on carbon fabric for supercapacitor applications

in situ NZMF/CF · Electrode · 1 M KOH, -0.3 to 0.3 V vs Ag/AgCl, multiple scan rates; binder-free in situ electrode.

Electrochemistry ApplicationCyclic voltammetry

Asymmetric supercapacitor device CV, GCD, EIS, Ragone and cycling tests

2022 · Hierarchical 3D micro-nanostructures based on in situ deposited bimetallic metal-organic structures on carbon fabric for supercapacitor applications

SC-ASD NZMF/CF//AC/CF device · Electrode · PVA/KOH gel electrolyte; CV windows 0.4-2.0 V and device working window 1.5 V; GCD at current densities including 1.1-8.8 A g^-1; energy/power calculated by SI Eqs. (2)-(3).

Electrochemistry ApplicationLinear sweep

three-electrode OER; LSV, Tafel, EIS, chronoamperometry and double-layer capacitance

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

HE-MOF nanosheet array electrode on nickel foam · Electrode · 1 M KOH; catalyst working electrode, graphite rod counter electrode, Hg/Hg2Cl2 reference; LSV at 5 mV s-1 with 85% iR compensation; EIS 100000 to 0.01 Hz at 10 mA cm-2; Cdl from 100-200 mV s-1 CVs.

Electrochemistry ApplicationLinear sweep

OER LSV/Tafel/EIS/Cdl controls

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

pristine nickel foam · Electrode · 1.0 M KOH; pure NF and IrO2/NF benchmark controls.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl comparison for double-metal MOFs

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

NiFe-MOF electrode on NF · Electrode · 1.0 M KOH; Figure S15 LSV/EIS, Figure S19 Cdl; result rows specify individual samples in result names.

Electrochemistry ApplicationLinear sweep

OER LSV/Tafel/EIS/Cdl/stability

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

HE-MOF nanosheet array electrode on nickel foam · Electrode · 1.0 M KOH; 85% iR-compensated LSV at 5 mV s-1; CV scan rates 100-200 mV s-1 for Cdl.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

HE-MOF bulk drop-cast electrode · Electrode · 1.0 M KOH; bulk morphology control.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

HE-MOF powder · Powder · 1.0 M KOH; compared with HE-MOF array and HE-MOF bulk.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl comparison for quadruple-metal MOFs

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

NiFeZnMo-MOF electrode on NF · Electrode · 1.0 M KOH; Figure S17 LSV/EIS, Figure S21 Cdl; result rows specify individual samples in result names.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl comparison for single-metal MOFs

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

Fe-MOF electrode on NF · Electrode · 1.0 M KOH; Figure S14 LSV/EIS, Figure S18 Cdl; result rows specify individual samples in result names.

Electrochemistry ApplicationLinear sweep

OER LSV/EIS/Cdl comparison for triple-metal MOFs

2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis

NiFeZn-MOF electrode on NF · Electrode · 1.0 M KOH; Figure S16 LSV/EIS, Figure S20 Cdl; result rows specify individual samples in result names.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Imparting Functionality and Enhanced Surface Area to a 2D Electrically Conductive MOF via Macrocyclic Linker

Co-metalated Cu-HHTC · Powder · Three-electrode system with 0.01 M Ag/AgNO3 in 0.1 M TBAPF6-acetonitrile reference, Pt counter, glassy carbon working electrode, 0.1 M TBAPF6 acetonitrile electrolyte; ferrocene internal standard, 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2022 · In-Built Fabrication of MOF Assimilated Porous Hollow Carbon from Pre-Hydrolysate for Supercapacitor

C1-ZIF-67 working electrode · Electrode · Three-electrode system in 1 M KOH; Hg/HgO reference; platinum counter electrode; scan rates 20, 30, 50 and 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2022 · In-Built Fabrication of MOF Assimilated Porous Hollow Carbon from Pre-Hydrolysate for Supercapacitor

C2-ZIF-67 working electrode · Electrode · Three-electrode system in 1 M KOH; Hg/HgO reference; platinum counter electrode; scan rates 20, 30, 50 and 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2022 · Iodine-induced electrical conductivity of novel columnar lanthanide metal-organic frameworks based on a butterfly-shaped π-extended tetrathiafulvalene ligand

iodine-treated Tb-MOF bulk powder · Powder · Iodine-treated Tb-MOF paste in MeCN mounted on glassy carbon electrode; Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN supporting electrolyte.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2022 · Iodine-induced electrical conductivity of novel columnar lanthanide metal-organic frameworks based on a butterfly-shaped π-extended tetrathiafulvalene ligand

pristine Tb-MOF bulk powder/crystals · Powder · Tb-MOF paste in MeCN mounted on glassy carbon electrode; Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN supporting electrolyte.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance

Fe-HHTP composite working electrode · Electrode · Three-electrode system in acetonitrile with 0.1 M TBAPF6; Ag/Ag+ reference, Pt counter, glassy carbon working electrode; scan rate 100 mV s-1; potential range -2 to 2 V for comparative CV.

Diffraction StructureCyclic voltammetry

PXRD before and after CV stability test

2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance

Fe-HHTP composite working electrode · Electrode · Electrode material scraped after electrochemical measurements, dispersed in acetone, retrieved by centrifugation and measured by PXRD.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry plus Tauc plot

2022 · Li-TFSI endohedral Metal-Organic frameworks in stable perovskite solar cells for Anti-Deliquescent and restricting ion migration

Li-TFSI@NH2-MIL-101 powder · Powder · band alignment of MOF additives

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Metal organic frameworks (MOFs) as potential anode materials for improving power generation from algal biophotovoltaic (BPV) platforms

biofilm loaded Cu-Ni MOF/ITO · Electrode · Three-electrode assembly in Chlorella sp. UMACC 313; working electrode biofilm attached ITO/bare ITO, Pt wire counter, Ag/AgCl reference; degassed N2 10 min; sweep rate 50 mV/s.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (homogeneous linker)

2022 · Microscopic Insights into Cation-Coupled Electron Hopping Transport in a Metal-Organic Framework

dcphOH-NDI homogeneous linker solution · Unknown · dcphOH-NDI in 0.5 M LiClO4, KPF6 or TBAPF6 in DMF/EtOH/THF; 50 mV s-1; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (MOF thin film)

2022 · Microscopic Insights into Cation-Coupled Electron Hopping Transport in a Metal-Organic Framework

Zr(dcphOH-NDI)@FTO thin-film electrodes · Electrode · Zr(dcphOH-NDI)@FTO in 0.5 M LiClO4, KPF6 or TBAPF6 in DMF; 50 mV s-1; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2022 · Morphologies of thienyl based bimetallic metal-organic frameworks controlled by solvents for high specific capacitance supercapacitor

E-NCT MOF working electrode · Electrode · 1 M KOH; E/M/D-NCT MOF and PTA-NC MOF electrodes; 10 mV s^-1 comparison.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode asymmetric-supercapacitor cyclic voltammetry

2022 · Morphologies of thienyl based bimetallic metal-organic frameworks controlled by solvents for high specific capacitance supercapacitor

E-NCT MOF//AC ASC · Electrode · E-NCT MOF//AC ASC measured in 0 to 1.6 V potential window at different scan rates.

Electrochemistry ApplicationCyclic voltammetry

CV capacitive/diffusion contribution analysis

2022 · Morphologies of thienyl based bimetallic metal-organic frameworks controlled by solvents for high specific capacitance supercapacitor

E-NCT MOF working electrode · Electrode · E-NCT MOF analysed over 2.5 to 20 mV s^-1 using i(V)=k1v+k2v^1/2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2022 · Morphologies of thienyl based bimetallic metal-organic frameworks controlled by solvents for high specific capacitance supercapacitor

E-NCT MOF working electrode · Electrode · E-NCT MOF CV at 2.5 mV s^-1 shown in SI Figure S6.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Nanostructured Conductive Metal Organic Frameworks for Sustainable Low Charge Overpotentials in Li–Air Batteries

Cu-THQ nanoflakes coated on GDE · Electrode · Cu-THQ catalyst coated on GDE working electrode; Li chips counter/reference; 1 M LiNO3 in TEGDME; no InBr3; pure O2 purge 30 min; scan rate 10 mV/s

Electrochemistry ApplicationCyclic voltammetry

electrochemical double-layer capacitance from CV

2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity

CP 1 catalyst ink drop-cast on glassy carbon electrode · Electrode · CV at scan rates 20 to 100 mV s-1 in the non-Faradaic region; current density at 0.91 V vs RHE plotted versus scan rate.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity

CP 1 catalyst ink drop-cast on glassy carbon electrode · Electrode · 0.1 M KOH; three-electrode configuration; GCE working electrode; Ag/AgCl reference converted to RHE; Pt wire counter; scan rate 20 mV s-1; catalyst loading 0.20 mg cm-2.

Electrochemistry ApplicationCyclic voltammetry

electrochemical double-layer capacitance from CV

2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity

CP 2 catalyst ink drop-cast on glassy carbon electrode · Electrode · CV at scan rates 20 to 100 mV s-1 in the non-Faradaic region; current density at 0.91 V vs RHE plotted versus scan rate.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity

CP 2 catalyst ink drop-cast on glassy carbon electrode · Electrode · 0.1 M KOH; three-electrode configuration; GCE working electrode; Ag/AgCl reference converted to RHE; Pt wire counter; scan rate 20 mV s-1; catalyst loading 0.20 mg cm-2.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity

RuO2 benchmark electrode · Electrode · 0.1 M KOH; comparison with CP 1 and CP 2 in Figure 4A.

Electrochemistry ApplicationCyclic voltammetry

two-electrode ASC CV, GCD, EIS, Ragone plot and cycling

2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors

Ni-mba-K//NDC asymmetric supercapacitor · Electrode · CR2035 Ni-mba-K//NDC device, cellulose cloth diaphragm, 6 M KOH; operating voltage 0-1.6 V.

Electrochemistry ApplicationCyclic voltammetry

two-electrode ASC CV, GCD, EIS, Ragone plot and cycling

2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors

Ni-mba-Na//NDC asymmetric supercapacitor · Electrode · CR2035 Ni-mba-Na//NDC device, cellulose cloth diaphragm, 6 M KOH; operating voltage 0-1.6 V.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD, EIS and cycling

2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors

Ni-mba-K nickel-foam working electrode · Electrode · 6 M KOH, CHI760E, Ni-mba-K/Ni foam working electrode, Pt counter, Hg/HgO reference; voltage 0-0.6 V for CV and 0-0.5 V for GCD.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD, EIS and cycling

2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors

Ni-mba-Na nickel-foam working electrode · Electrode · 6 M KOH, CHI760E, Ni-mba-Na/Ni foam working electrode, Pt counter, Hg/HgO reference; voltage 0-0.6 V for CV and 0-0.5 V for GCD.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV, GCD, EIS and cycling

2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors

NDC negative electrode · Electrode · NDC characterised as negative electrode material; details in Figure S7 and main text.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells

NiPd@Ni3HHTP2/GC · Electrode · Bare GC, NiPd/GC, Ni3HHTP2/GC and NiPd@Ni3HHTP2/GC in N2-saturated 10 mM PBS, pH 7.4.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells

NiPd/GC · Electrode · Bare GC background and NiPd/GC electrode in 0.1 M H2SO4; scan rate 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for H2O2 reduction

2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells

NiPd@Ni3HHTP2/GC · Electrode · N2-saturated 10 mM PBS (pH 7.4) containing 5 mM H2O2; scan rate 50 mV s-1 for Fig. 3F comparisons.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry

2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells

NiPd@Ni3HHTP2/GC · Electrode · N2-saturated 10 mM PBS (pH 7.4) containing 1 mM H2O2; scan rates 10-200 mV s-1.

Electrochemistry ApplicationUnspecified subtype

Cyclic voltammetric stability scan plus SEM/XRD checks

2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells

Ni3HHTP2/GC · Electrode · Ni3HHTP2/GC electrochemically scanned in 10 mM PBS (pH 7.4) for 24 h.

Sensing ApplicationDifferential pulse

DPV analytical calibration for CBZ

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · CBZ concentration series 0.0005, 0.005, 0.01, 0.05, 0.1, 0.5, 1.0, 5.0, 10.0, and 20.0 uM in 0.1 M PBS, pH 6.0; optimum conditions.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate study

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · 10.0 uM CBZ in 0.1 M PBS, pH 6.0; scan rates 10-300 mV s-1.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · 0.1 M PBS, pH 6.0, containing 10.0 uM CBZ; working potential 0.4-1.2 V; pulse width 0.05 s; amplitude 50 mV.

Sensing ApplicationDifferential pulse

DPV pH optimisation

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · 10.0 uM CBZ in 0.1 M PBS over pH 4.0-8.0.

Sensing ApplicationDifferential pulse

DPV standard addition in strawberry and cabbage extracts

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · Real samples centrifuged, filtered through 0.45 um membrane, diluted 100 times with 0.1 M PBS pH 6.0, and analysed by standard addition.

Sensing ApplicationDifferential pulse

DPV reproducibility, repeatability, and interference tests

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · 10.0 uM CBZ in 0.1 M PBS, pH 6.0; seven independent electrodes; one electrode measured twenty times; interferents K+, Na+, Cu2+, Cl-, NO3-, SO4(2-), uric acid, ascorbic acid, fenitrothion, malathion, and thiabendazole.

Sensing ApplicationDifferential pulse

DPV accumulation-time and electrodeposition-time optimisation

2022 · One-step electrochemical synthesis of tremella-like Co-MOFs/carbon nanohorns films for enhanced electrochemical sensing of carbendazim in vegetable and fruit samples

Co-MOFs/CNHs/GCE composite sensing electrode · Electrode · 10.0 uM CBZ on Co-MOFs/CNHs/GCE in 0.1 M PBS, pH 6.0.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode flexible asymmetric supercapacitor CV, GCD, EIS, Ragone, and 5000-cycle test

2022 · One-Step Solvothermal Synthesis of Raspberry-like NiCo-MOF for High-Performance Flexible Supercapacitors for a Wide Operation Temperature Range

NiCo-MOF-3//MnO2 flexible asymmetric supercapacitor · Electrode · NiCo-MOF-3//MnO2 quasi-solid-state FASC with PVA/KOH/K3[Fe(CN)6]/glycerin gel electrolyte; operating potential up to 1.6 V; CV 10-100 mV/s; GCD 1-20 A/g; EIS 10^-2 to 10^4 Hz.

Electrochemistry ApplicationCyclic voltammetry

Flexibility and operating-temperature CV/GCD tests

2022 · One-Step Solvothermal Synthesis of Raspberry-like NiCo-MOF for High-Performance Flexible Supercapacitors for a Wide Operation Temperature Range

NiCo-MOF-3//MnO2 flexible asymmetric supercapacitor · Electrode · Device tested at bending angles 0, 45, 90, and 135 deg and operating temperatures -20, 20, and 40 deg C.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD, and EIS of MnO2 negative electrode

2022 · One-Step Solvothermal Synthesis of Raspberry-like NiCo-MOF for High-Performance Flexible Supercapacitors for a Wide Operation Temperature Range

MnO2 negative electrode · Electrode · Independent MnO2 electrode in 3.0 M KOH; negative potential interval from -1.0 V to 0 V.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV, GCD, and EIS

2022 · One-Step Solvothermal Synthesis of Raspberry-like NiCo-MOF for High-Performance Flexible Supercapacitors for a Wide Operation Temperature Range

NiCo-MOF-3 powder · Powder · Working electrode prepared active material; Pt counter; Hg/HgO reference; 3.0 M KOH electrolyte; CV 0-0.42 V at 5 mV/s for comparison; GCD current density 1 A/g for specific capacitance.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2022 · Operando Elucidation of Electrocatalytic and Redox Mechanisms on a 2D Metal Organic Framework Catalyst for Efficient Electrosynthesis of Hydrogen Peroxide in Neutral Media

Ni-HAB RRDE disk catalyst film · Electrode · Ni-HAB catalyst in Ar-saturated 0.05 M NaPi; scan-rate CVs used to identify linker redox potential.

Electrochemistry ApplicationLinear sweep

Comparative RRDE-LSV

2022 · Operando Elucidation of Electrocatalytic and Redox Mechanisms on a 2D Metal Organic Framework Catalyst for Efficient Electrosynthesis of Hydrogen Peroxide in Neutral Media

Ni-HAB RRDE disk catalyst film · Electrode · Ni-HAB, Ni-HITP and Cu-HAB compared in 0.025 M Na2HPO4/NaH2PO4 buffer pH 6.5-6.6 at 1600 rpm.

Electrochemistry ApplicationLinear sweep

RRDE LSV and chronoamperometry

2022 · Operando Elucidation of Electrocatalytic and Redox Mechanisms on a 2D Metal Organic Framework Catalyst for Efficient Electrosynthesis of Hydrogen Peroxide in Neutral Media

Ni-HAB RRDE disk catalyst film · Electrode · 0.05 M NaPi buffer pH 6.5-6.6, 1600 rpm, 50 mV/s LSV or CA; O2-saturated and Ar-saturated conditions.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2022 · Phthalocyanine-Based Two-Dimensional Conductive Metal-Organic Framework as Electrochemical Sensor for Highly Sensitive Detection of Nifedipine

CoPc-Cu MOF/GCE · Electrode · 20 uM NIF in 10 ml 0.2 M PBS buffer (pH 7.0), comparing bare GCE, CoPc/GCE, and CoPc-Cu MOF/GCE; blank buffer also measured.

Sensing ApplicationDifferential pulse

differential pulse voltammetry (DPV) calibration for NIF

2022 · Phthalocyanine-Based Two-Dimensional Conductive Metal-Organic Framework as Electrochemical Sensor for Highly Sensitive Detection of Nifedipine

CoPc-Cu MOF/GCE · Electrode · DPV curves for 0.01-92.55 uM NIF in pH 7.0 PBS buffer at CoPc-Cu MOF/GCE.

Sensing ApplicationDifferential pulse

DPV reproducibility, storage stability, and selectivity tests

2022 · Phthalocyanine-Based Two-Dimensional Conductive Metal-Organic Framework as Electrochemical Sensor for Highly Sensitive Detection of Nifedipine

CoPc-Cu MOF/GCE · Electrode · 50 uM NIF in pH 7.0 PBS for reproducibility/stability; 2.0 uM NIF with common interferents for selectivity.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry scan-rate study

2022 · Phthalocyanine-Based Two-Dimensional Conductive Metal-Organic Framework as Electrochemical Sensor for Highly Sensitive Detection of Nifedipine

CoPc-Cu MOF/GCE · Electrode · 20 uM NIF; scan rates from 10 to 100 mV s-1.

Sensing ApplicationDifferential pulse

real sample DPV assay of NIF tablets with HPLC comparison

2022 · Phthalocyanine-Based Two-Dimensional Conductive Metal-Organic Framework as Electrochemical Sensor for Highly Sensitive Detection of Nifedipine

CoPc-Cu MOF/GCE · Electrode · NIF tablet solutions filtered and diluted in methanol; measurements repeated three times for each sample.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2022 · Preparation of Bimetallic Conductive Metal-organic Framework Material Ni/Co-CAT for Electrocatalytic Oxygen Reduction 双金属导电金属有机框架材料 Ni/Co-CAT 的制备及其氧还原催化性能研究

Ni-Co-CAT/carbon black/PTFE air cathode · Electrode · Three-electrode system in 50 mmol/L phosphate buffer; electrode clip working-electrode base, graphite rod counter electrode, Hg/HgO reference; potential window -0.6 to 0.6 V; scan rate 0.01 V/s.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV)

2022 · Preparation of Bimetallic Conductive Metal-organic Framework Material Ni/Co-CAT for Electrocatalytic Oxygen Reduction 双金属导电金属有机框架材料 Ni/Co-CAT 的制备及其氧还原催化性能研究

Ni-Co-CAT/carbon black/PTFE air cathode · Electrode · Three-electrode system in 50 mmol/L phosphate buffer; potential window -0.6 to 0.6 V; scan rate 0.01 V/s.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2022 · Preparation of Bimetallic Conductive Metal-organic Framework Material Ni/Co-CAT for Electrocatalytic Oxygen Reduction 双金属导电金属有机框架材料 Ni/Co-CAT 的制备及其氧还原催化性能研究

Ni-Co-CAT/carbon black/PTFE air cathode · Electrode · Tafel curves calculated from LSV using η = a + b lg i; current density in mA/cm2; Tafel slope in mV/dec.

Electrical TransportUnspecified subtype

Two-probe cyclic voltammetric conductivity measurement

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-CAU-24 dry pellet · Pellet · Dry pellet sandwiched between two Ti foils; measured at room temperature in air under two-electrode mode; resistance fitted near 0 V.

Electrical TransportUnspecified subtype

Two-probe cyclic voltammetric conductivity measurement

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-MOF-808 dry pellet · Pellet · Dry pellet sandwiched between two Ti foils; measured at room temperature in air under two-electrode mode; resistance fitted near 0 V.

Electrical TransportUnspecified subtype

Two-probe cyclic voltammetric conductivity measurement

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-UiO-66 dry pellet · Pellet · Dry pellet sandwiched between two Ti foils; measured at room temperature in air under two-electrode mode; resistance fitted near 0 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry on drop-cast thin films

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

All powder materials: MOF-808, Mn-MOF-808, UiO-66, Mn-UiO-66, CAU-24 and Mn-CAU-24 · Powder · MOF-808, UiO-66 and CAU-24 pristine control thin films measured at 50 mV s-1 in 0.5 M Na2SO4(aq), conventional three-electrode setup with Ag/AgCl/NaCl (3 M) reference and Pt counter.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate analysis, log(Jpa) vs log(v)

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-CAU-24 thin film on FTO · Thin Film · Mn-CAU-24 thin film in 0.05-1.0 M Na2SO4(aq); anodic peak near +0.6 V vs Ag/AgCl/NaCl (3 M) used.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate analysis, log(Jpa) vs log(v)

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-MOF-808 thin film on FTO · Thin Film · Mn-MOF-808 thin film in 0.05-1.0 M Na2SO4(aq); anodic peak near +0.6 V vs Ag/AgCl/NaCl (3 M) used.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate analysis, log(Jpa) vs log(v)

2022 · Probing the electronic and ionic transport in topologically distinct redox-active metal-organic frameworks in aqueous electrolytes

Mn-UiO-66 thin film on FTO · Thin Film · Mn-UiO-66 thin film in 0.05-1.0 M Na2SO4(aq); anodic peak near +0.6 V vs Ag/AgCl/NaCl (3 M) used.

Electrochemistry ApplicationCyclic voltammetry

Electrochemical impedance spectroscopy and cyclic voltammetry

2022 · Rapid and sensitive detection of PD-L1 exosomes using Cu-TCPP 2D MOF as a SPR sensitizer

2D MOF-modified gold electrode · Electrode · Three-electrode system with modified gold electrode, saturated calomel reference, platinum counter electrode; stepwise addition of 2D MOF, peptides, and exosomes.

Electrochemistry ApplicationCyclic voltammetry

solid-state DC cyclic voltammetry

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Er-m-TTFTB polycrystalline/powder sample · Powder · Same solid-state CV setup as Tb; SI Figure S6 reports Er-m-TTFTB consecutive cycles and scan-rate dependence.

Electrochemistry ApplicationCyclic voltammetry

solid-state DC cyclic voltammetry

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Gd-m-TTFTB polycrystalline/powder sample · Powder · Same solid-state CV setup as Tb; SI Figure S7 reports Gd-m-TTFTB consecutive cycles and scan-rate dependence.

Electrochemistry ApplicationCyclic voltammetry

solid-state DC cyclic voltammetry

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Tb-m-TTFTB polycrystalline/powder sample · Powder · 0.1 M LiBF4 in distilled CH3CN; glassy carbon working electrode with powder sample paste in ethanol; Pt wire auxiliary; Ag wire quasi-reference; ferrocene internal standard; potentials vs Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry

2022 · Redox-Active Ni(II) Nodes Induced Electrochromism in a Two-Dimensional Conductive Metal-Organic Framework

Ni3(HITP)2-362 nm/FTO electrode · Electrode · CV at 10, 20, 30, 40, 50, 60, and 70 mV/s in LiClO4/PC; Dcv calculated by eq S4.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with in situ transmittance

2022 · Redox-Active Ni(II) Nodes Induced Electrochromism in a Two-Dimensional Conductive Metal-Organic Framework

Ni3(HITP)2-362 nm/FTO electrode · Electrode · CV at 10 mV/s with corresponding in situ transmittance at 780 nm; potentials between 0.2 and -1.5 V in 1 M LiClO4/PC.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for H2O2 reduction

2022 · Self-supporting electrochemical sensors for monitoring of cell-released H2O2 based on metal nanoparticle/MOF nanozymes

Ag/2D Zn-MOF/GCE · Electrode · CV in 0.1 M PBS with H2O2; scan rate 100 mV/s; concentration and scan-rate series in SI.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of colloidal Fe(TA)2 nanoparticles

2022 · Size-Dependent Properties of Solution-Processable Conductive MOF Nanocrystals

Fe(TA)2 colloid CV series in 0.1 M TBAPF6/DMF · Electrode · DMF with 0.1 M TBAPF6; glassy carbon working electrode, silver wire pseudo-reference, platinum counter electrode; scans at 10, 40, 70, 100 and 130 mV/s.

Electrochemistry ApplicationLinear sweep

PEC HER photocurrent-time and LSV

2022 · sp-Carbon Incorporated Conductive Metal-Organic Framework as Photocathode for Photoelectrochemical Hydrogen Generation

Cu3HHAE2 photocathode on Cu foam · Electrode · Three-electrode cell in 0.1 M Na2SO4 aqueous solution (pH 6.8); Cu foam with catalyst working electrode, Ag/AgCl reference, graphite rod counter; 200 W Xenon lamp, AM 1.5G, 100 mW cm-2; electrolyte degassed with Ar 30 min; i-t at 0 V vs RHE and LSV at 2 mV s-1.

Electrochemistry ApplicationLinear sweep

PEC HER photocurrent-time and LSV

2022 · sp-Carbon Incorporated Conductive Metal-Organic Framework as Photocathode for Photoelectrochemical Hydrogen Generation

HHAE monomer cathode on Cu foam · Electrode · Same three-electrode PEC HER conditions as Cu3HHAE2 control: 0.1 M Na2SO4, 200 W Xenon lamp, AM 1.5G, 100 mW cm-2, 0 V vs RHE for i-t.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), scan-rate series

2022 · Split-cell symmetric supercapacitor performance of bimetallic MOFs yolk-shell hierarchical microstructure

Ni-Zn MOF//Ni-Zn MOF split-cell symmetric device (SC-SD) · Electrode · SC-SD CV profiles at a stated 1.6 V figure-caption potential window across scan rates; SI gives 10-400 mV s-1, while Fig. 3b legend also includes 500 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), potential-window evaluation

2022 · Split-cell symmetric supercapacitor performance of bimetallic MOFs yolk-shell hierarchical microstructure

Ni-Zn MOF//Ni-Zn MOF split-cell symmetric device (SC-SD) · Electrode · CV profiles at different potential windows; Fig. 3a scan rate 50 mV s-1; SI says CV tests at 10-400 mV s-1 and 0-2 V on a Biologic SP-200.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry electrocatalysis

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

2-GCE · Electrode · 0.5 M H2SO4 containing ascorbic acid at different concentrations; 50 mV s-1; compared with {P2W18O62}-GCE and 1-GCE.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

1-GCE · Electrode · 0.5 M H2SO4, three-electrode system, 20-200 mV s-1; voltage window -0.65 to 0.50 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and Dunn correction

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

2-CPE · Electrode · 0.5 M H2SO4, 10-100 mV s-1, voltage window -0.6 to 0.5 V; b-value and pseudocapacitive contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

2-GCE · Electrode · 0.5 M H2SO4, three-electrode system, 20-200 mV s-1; voltage window -0.65 to 0.60 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

{P2W18O62}-GCE · Electrode · 0.5 M H2SO4, three-electrode system, 20-200 mV s-1; voltage window -0.65 to 0.50 V.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry electrocatalysis

2022 · Supramolecular Host-Guest Assembly Based on Phosphotungstate Nanostructures for Pseudocapacitive and Electrochemical Sensing Applications

2-GCE · Electrode · 0.5 M H2SO4 containing H2O2 at different concentrations; 50 mV s-1; compared with {P2W18O62}-GCE and 1-GCE.

Electrochemistry ApplicationCyclic voltammetry

CV during mechanical bending and twisting

2022 · Surface Structure Construction of Fibers in a Conductive Metal-Organic Framework/Metal/Cotton Electrode for Flexible Textile Supercapacitors

CPAMOF Cu-MOF/Au/cotton electrode · Electrode · Bending: 100 cycles at 180 degrees; twisting: 0 to 45 degrees.

Electrochemistry ApplicationCyclic voltammetry

CV during device bending and twisting

2022 · Surface Structure Construction of Fibers in a Conductive Metal-Organic Framework/Metal/Cotton Electrode for Flexible Textile Supercapacitors

Symmetrical all-solid-state TSC assembled from CPAMOF electrodes · Electrode · TSC bending: 200 cycles at 90 degrees; twisting: angles from 0 to 45 degrees.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode CV, GCD and Ragone analysis

2022 · Surface Structure Construction of Fibers in a Conductive Metal-Organic Framework/Metal/Cotton Electrode for Flexible Textile Supercapacitors

Symmetrical all-solid-state TSC assembled from CPAMOF electrodes · Electrode · Assembled symmetrical all-solid-state TSC tested in two-electrode configuration.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode asymmetric supercapacitor CV, GCD and cycling

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Co/Ni-MOF-2:1//AC ASC device · Electrode · Co/Ni-MOF-2:1 positive electrode and activated carbon negative electrode in 3.0 M KOH; 0-1.4 V CV window; GCD 0.5-5 A g-1; cycling at 5 A g-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode cell

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Co/Ni-MOF-2:1 three-electrode working electrode · Electrode · 3.0 M KOH at room temperature; Hg/HgO reference; 0-0.6 V window; scan rates including 20 mV s-1 and 10-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis (log(i) versus log(v) b-value)

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Co/Ni-MOF-1:1 three-electrode working electrode · Electrode · Specific peak currents extracted from CV curves at scan rates from 10 to 100 mV s-1 in 3.0 M KOH.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis (log(i) versus log(v) b-value)

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Co/Ni-MOF-1:2 three-electrode working electrode · Electrode · Specific peak currents extracted from CV curves at scan rates from 10 to 100 mV s-1 in 3.0 M KOH.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis (log(i) versus log(v) b-value)

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Co/Ni-MOF-3:1 three-electrode working electrode · Electrode · Specific peak currents extracted from CV curves at scan rates from 10 to 100 mV s-1 in 3.0 M KOH.

Electrochemistry ApplicationCyclic voltammetry

CV kinetic analysis (log(i) versus log(v) b-value)

2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage

Ni-MOF three-electrode working electrode · Electrode · Specific peak currents extracted from CV curves at scan rates from 10 to 100 mV s-1 in 3.0 M KOH.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2022 · Synthesis of Tostadas-Shaped Metal-Organic Frameworks for Remitting Capacity Fading of Li-Ion Batteries

NHM composite working electrode · Electrode · Initial three cycles; 0.01-3.0 V; 0.1 mV s-1.

Sensing ApplicationDifferential pulse

DPV detection in total RNA extracted from L02 and MCF-7 cells

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · Constructed electrochemical sensor used to detect miRNA-21 in total RNA from cell samples.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · DPV compared final electrode with N-PCD against no-N-PCD Au/GCE control at 2000 fM miRNA-21. SI DPV: 10 mM PBS pH 7.0 under N2, -0.6 to 0.4 V.

Sensing ApplicationDifferential pulse

DPV calibration for simultaneous miRNA-21 and miRNA-141

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

Dual miRNA-21/miRNA-141 biosensor · Electrode · MB signal detects miRNA-21 and Fc signal detects miRNA-141 for 0-10000 fM target concentrations.

Sensing ApplicationDifferential pulse

DPV calibration for miRNA-21

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · DPV peak currents of Fc and MB probes recorded for 0, 5, 10, 50, 100, 500, 2000, 5000 and 10000 fM miRNA-21.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV) at different scan rates

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

N-PCD modified glassy carbon electrode · Electrode · CV of N-PCD/GCE; scan rate 20-200 mV/s at 20 mV/s intervals. SI CV electrolyte: 0.1 M PBS pH 7.4 with 5 mM [Fe(CN)6]3-/4- and 0.1 M KCl, -0.2 to 0.6 V at 100 mV/s for standard CV.

Sensing ApplicationDifferential pulse

DPV reproducibility and storage stability

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · Six electrodes measured for reproducibility; five electrodes stored at 4 deg C for 10 days and tested every 2 days.

Sensing ApplicationDifferential pulse

DPV selectivity test

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · DPV responses to 2000 fM miRNA-21 and interfering RNA sequences.

Sensing ApplicationDifferential pulse

DPV optimisation of sensor construction variables

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · Optimised Au deposition time, miRNA incubation time, DNA1-Fc/DNA2-MB concentration and co-incubation time using 2000 fM miRNA.

Sensing ApplicationDifferential pulse

DPV calibration for miRNA-21 using Fc single signal

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

Single-signal Fc miRNA-21 biosensor · Electrode · Fc DPV signal for 0, 5, 10, 50, 100, 500, 2000, 5000 and 10000 fM miRNA-21.

Sensing ApplicationDifferential pulse

DPV calibration for miRNA-21 using MB single signal

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

Single-signal MB miRNA-21 biosensor · Electrode · MB DPV signal for 0, 5, 10, 50, 100, 500, 2000, 5000 and 10000 fM miRNA-21.

Electrochemistry ApplicationCyclic voltammetry

Stepwise cyclic voltammetry (CV)

2022 · Target-triggered hybridization chain reaction for ultrasensitive dual-signal miRNA detection

DNA1-Fc + DNA2-MB/miRNA/MCH/T4-DNA/AuNPs/N-PCD/GCE biosensor · Electrode · CV of electrodes modified with GCE, N-PCD/GCE, AuNPs/N-PCD/GCE, T4-DNA, MCH, miRNA and DNA probes.

Electrochemistry ApplicationCyclic voltammetry

Capacitive CV-derived capacitance and ECSA

2022 · Thousand-fold increase in O2electroreduction rates with conductive MOFs

0.4 mg cm^-2 Ni3(HITP)2 GDE · Electrode · CVs in N2 before potentiostatic electrolysis; ten cycles at 200, 100, 75, 50 and 20 mV s^-1; capacitance divided by 18 uF cm_real^-2 to estimate ECSA.

Electrochemistry ApplicationCyclic voltammetry

spectroelectrochemical switching and three-electrode CV

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L1 drop-cast thin film · Thin Film · 0.1 M LiClO4 in dry acetonitrile; metallopolymer-modified FTO/TCO working electrode, Ag/AgCl reference, Pt counter; pulse width 5 s; potential window 0.7-1.5 V

Electrochemistry ApplicationCyclic voltammetry

spectroelectrochemical switching and three-electrode CV

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L2 drop-cast thin film · Thin Film · 0.1 M LiClO4 in dry acetonitrile; metallopolymer-modified FTO/TCO working electrode, Ag/AgCl reference, Pt counter; pulse width 5 s; potential window 0.7-1.5 V

Electrochemistry ApplicationCyclic voltammetry

spectroelectrochemical switching and three-electrode CV

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L3 drop-cast thin film · Thin Film · 0.1 M LiClO4 in dry acetonitrile; metallopolymer-modified FTO/TCO working electrode, Ag/AgCl reference, Pt counter; pulse width 5 s; potential window 0.7-1.5 V

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance and ECSA from CV

2022 · Ultrafast transformation of metal-organic frameworks into advanced oxygen evolution electrocatalysts with good universality and scalability

Fe-CoNi MOFs on Ni foam, 0.10 M Fe(NO3)3 · Electrode · CV curves recorded from 5 to 25 mV s^-1 with 5 mV s^-1 interval; ECSA = Cdl/Cs with Cs = 40 uF cm^-2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry AA probe screening

2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat

Ni3HHTP2 film working electrode on Au/BNC · Electrode · CV in PBS solution using AA as electrochemical probe; Figure S9 scanned at 50 mV/s in 0.1 M PBS with/without AA.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry for UA detection

2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat

Ni3HHTP2 film working electrode on Au/BNC · Electrode · 0.1 M PBS; DPV range -0.2 to 0.7 V, incremental potential 0.004 V, pulse amplitude 0.05 V; UA concentrations read from Figure 2f inset.

Electrochemistry ApplicationCyclic voltammetry

Asymmetric supercapacitor CV, GCD, EIS, Ragone and cycling tests

2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor

NCMG-10//AC asymmetric supercapacitor · Electrode · NCMG-10 positive electrode, AC negative electrode, 2 M KOH electrolyte; working voltage set to 1.5 V; CV from 5-50 mV s-1; cycling over 10000 cycles.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge (GCD)

2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor

NCMG-10 · Nanosheet · Three-electrode system in 2 mol L-1 KOH; CV 0-0.5 V; GCD 0-0.4 V; capacities at 0.5 A g-1 and rate/cycling tests.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

1-Dy · Powder · Three forward scans and scan-rate series from 50-400 mV s-1; potentials vs Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

1-Er · Powder · Same setup as 1-Dy; redox potentials reported vs Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

1-Gd · Powder · Sample dispersed in ethanol and dropped on glassy carbon; SCE reference; Pt auxiliary; Fc/Fc+ internal standard; 0.1 mol L-1 tetrabutylammonium hexafluorophosphate in CH3CN.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

1-Tb · Powder · Same setup as 1-Dy; redox potentials reported vs Fc/Fc+.

Sensing ApplicationDifferential pulse

DPV calibration for DON

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · PBS 1 mmol L-1, pH 5.0; successive DON additions; DeltaI = Ip - Ip0.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · AP1/N-Cu-MOF/GCE in PBS 1 mmol L-1, pH 5.0 without DON; curve c in Figure 3.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · AP1/N-Cu-MOF/GCE in PBS containing 10 ng mL-1 DON; curve d in Figure 3.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

Bare GCE control · Electrode · PBS 1 mmol L-1, pH 5.0; curve a in Figure 3.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

N-Cu-MOF/GCE control electrode · Electrode · PBS 1 mmol L-1, pH 5.0; curve b in Figure 3.

Sensing ApplicationDifferential pulse

DPV optimisation

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · Optimised N-Cu-MOF amount, AP1 concentration, electrolyte pH, and incubation time in PBS containing 2 ng mL-1 DON.

Sensing ApplicationDifferential pulse

DPV reproducibility

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · Five batches of sensors modified with N-Cu-MOF and five AP1/N-Cu-MOF-modified electrodes tested with 2 ng mL-1 DON.

Sensing ApplicationDifferential pulse

DPV selectivity test

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · DON and co-occurring mycotoxins each at 2 ng mL-1; MIX contains AFB1, AFB2, FB1, FB2, OTA, ZEN, and DON.

Sensing ApplicationDifferential pulse

Spiked wheat sample recovery by DPV aptasensor

2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol

AP1-grafted N-Cu-MOF/GCE aptasensor · Electrode · DON-free wheat flour spiked at 0.05, 0.50, 2.50, and 5.00 ug kg-1 in triplicate; extracted with acetonitrile/water and diluted in PBS.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry (CV)

2021 · A New Electrically Conducting Metal–Organic Framework Featuring U-Shaped cis-Dipyridyl Tetrathiafulvalene Ligands

I2-treated sine-MOF powder · Powder · Pastes made in MeCN mounted on glassy carbon working electrode; Ag/AgCl reference electrode, Pt-mesh counter electrode, 0.1 M Bu4NPF6 in MeCN.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry (CV)

2021 · A New Electrically Conducting Metal–Organic Framework Featuring U-Shaped cis-Dipyridyl Tetrathiafulvalene Ligands

pristine sine-MOF evacuated powder · Powder · Pastes made in MeCN mounted on glassy carbon working electrode; Ag/AgCl reference electrode, Pt-mesh counter electrode, 0.1 M Bu4NPF6 in MeCN.

Electrochemistry ApplicationSquare wave

square wave voltammetry (SWV)

2021 · A New Electrically Conducting Metal–Organic Framework Featuring U-Shaped cis-Dipyridyl Tetrathiafulvalene Ligands

pristine sine-MOF evacuated powder · Powder · SWV of pristine and I2-doped sine-MOF vs Ag/AgCl in 0.1 M Bu4NPF6/MeCN; paired comparison in Supplementary Figure S4 main text and SI caption Figure S2.

Electrochemistry ApplicationCyclic voltammetry

HLIC CV, GCD, Ragone analysis and long-term cycling

2021 · Cluster-Bridging-Coordinated Bimetallic Metal−Organic Framework as High-Performance Anode Material for Lithium-Ion Storage

Co4-Ir MOF||AC hybrid lithium-ion capacitor · Electrode · Co4-Ir MOF||AC HLICs tested between 2.0 and 4.0 V; CV scan rates 5-20 mV s-1; GCD current densities 100-4000 mA g-1; long cycling at 4000 mA g-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and electrochemical impedance spectroscopy

2021 · Cluster-Bridging-Coordinated Bimetallic Metal−Organic Framework as High-Performance Anode Material for Lithium-Ion Storage

Co4-Ir MOF||Li half-cell · Electrode · CV at 1 mV s-1 for initial cycles; kinetic CV at 0.2-10.0 mV s-1; EIS from 100 kHz to 0.01 Hz with 5 mV amplitude.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry kinetic analysis

2021 · Conductive Metal-Organic Framework for High Energy Sodium-Ion Hybrid Capacitors

Ni-MOF working electrode · Electrode · CV scan rates 0.1-1 mV s-1 under 0.5-3.0 V; b-value and capacitive contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

full-cell CV, GCD, Ragone and cycling tests

2021 · Conductive Metal-Organic Framework for High Energy Sodium-Ion Hybrid Capacitors

NVOPF/AC//Ni-MOF SIC full cell · Unknown · NVOPF/AC//Ni-MOF SIC; optimal window 0-3.8 V; energy and power based on total mass of Ni-MOF and NVOPF/AC.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Li-S coin cell with received carbon paper cathode · Electrode · Received carbon paper cathode control; scan rate 0.05 mV s-1; voltage window 1.8-2.8 V from SI Fig. S16.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Li-S coin cell with Ni-BTC@CP cathode · Electrode · Control CV under same scan-rate and sulfur-loading conditions as Ni-HHTP@CP.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Li-S coin cell with Ni-HHTP@CP cathode · Electrode · Sulfur loading 1.25 mg cm-2; scan rate 0.05 mV s-1; voltage range 1.8-2.8 V.

Electrochemistry ApplicationCyclic voltammetry

Tafel analysis derived from CV curves

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Li-S coin cell with Ni-BTC@CP cathode · Electrode · Control Tafel slopes for Li2S deposition (R2) and dissolution/oxidation (O1).

Electrochemistry ApplicationCyclic voltammetry

Tafel analysis derived from CV curves

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Li-S coin cell with Ni-HHTP@CP cathode · Electrode · Tafel plots for Li2S deposition (R2) and dissolution/oxidation (O1).

Electrical TransportLinear sweep

linear sweep voltammetry during EtOH exposure

2021 · Conductive Stimuli-Responsive Coordination Network Linked with Bismuth for Chemiresistive Gas Sensing

Bi(HHTP) chemiresistor on 10 um gap gold electrodes · Electrode · Voltage swept -1.0 to +1.0 V at 0.1 V/s; scans 3-5 exposed to 1000 ppm EtOH at 35 C

Electrochemistry ApplicationLinear sweep

LSV polarization in flow cell

2021 · Coordination environment dependent selectivity of single-site-Cu enriched crystalline porous catalysts in CO2 reduction to CH4

Cu-DBC modified GDL-carbon paper electrode · Electrode · 1 M KOH, CO2 or Ar flowing, 5 mV s-1, 90% iR compensation; Pt counter and Ag/AgCl reference converted to RHE

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV for ECSA proxy

2021 · Coordination environment dependent selectivity of single-site-Cu enriched crystalline porous catalysts in CO2 reduction to CH4

Cu-DBC modified GDL-carbon paper electrode · Electrode · CV curves at scan rates 10-100 mV s-1; Cdl calculated for Cu-DBC, Cu-HHTP, Cu-TTCOF and Cu-PPCOF

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Cu-Based Conductive MOF Grown in situ on Cu Foam as a Highly Selective and Stable Non-Enzymatic Glucose Sensor

Cu-MOF/CF electrode · Electrode · Three-electrode test in 0.1 M NaOH with and without 1 mM glucose, scan rate 50 mV s-1, potential range 0-1 V; compared against bare CF.

Electrochemistry ApplicationCyclic voltammetry

scan-rate-dependent cyclic voltammetry

2021 · Cu-Based Conductive MOF Grown in situ on Cu Foam as a Highly Selective and Stable Non-Enzymatic Glucose Sensor

Cu-MOF/CF electrode · Electrode · Cu-MOF/CF in 0.1 M NaOH with 1 mM glucose at scan rates from 20 to 200 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

pH-dependent glucose CV/current response

2021 · Cu-Based Conductive MOF Grown in situ on Cu Foam as a Highly Selective and Stable Non-Enzymatic Glucose Sensor

Cu-MOF/CF electrode · Electrode · Cu-MOF/CF response to 1 mM glucose in electrolytes from pH 10 to pH 14; 0.65 V and 50 mV s-1 noted in Figure 3D caption.

Sensing ApplicationCyclic voltammetry

long-term stability by cyclic voltammetry

2021 · Cu-Based Conductive MOF Grown in situ on Cu Foam as a Highly Selective and Stable Non-Enzymatic Glucose Sensor

Cu-MOF/CF electrode · Electrode · Cu-MOF/CF response to 1 mM glucose tested every 7 days for 1 month.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

Cs-MOF 4 · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

K-MOF 2 · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

K-MOF 2-ox · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solution-phase cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

TTFTC-H4 ligand · Powder · 0.2 mM ligand in 0.1 M TBAPF6/MeCN; glassy carbon working, Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solution-phase cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

TTFTC-Me4 ligand · Powder · 0.2 mM ligand in 0.1 M TBAPF6/MeCN; glassy carbon working, Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

Na-MOF 1-ox · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

Rb-MOF 3 · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

Rb-MOF 3-ox · Powder · MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry H2O2 sensing

2021 · Electrically Conductive Metal–Organic Framework Thin Film-Based On-Chip Micro-Biosensor: A Platform to Unravel Surface Morphology-Dependent Biosensing

BS-Cu-BHT film on on-chip electrode · Electrode · BS-Cu-BHT in 0.1 M PBS containing 0, 0.2, 0.4, 0.6, 0.8, and 1 mM H2O2 at 50 mV s-1.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry H2O2 sensing

2021 · Electrically Conductive Metal–Organic Framework Thin Film-Based On-Chip Micro-Biosensor: A Platform to Unravel Surface Morphology-Dependent Biosensing

US-Cu-BHT film on on-chip electrode · Electrode · US-Cu-BHT in 0.1 M PBS containing 0, 0.2, 0.4, 0.6, 0.8, and 1 mM H2O2 at 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry

2021 · Electrically Conductive Metal–Organic Framework Thin Film-Based On-Chip Micro-Biosensor: A Platform to Unravel Surface Morphology-Dependent Biosensing

BS-Cu-BHT film on on-chip electrode · Electrode · BS-Cu-BHT film in 0.2 mM H2O2 at scan rates of 10, 25, 50, 75, and 100 mV s-1 in 0.1 M PBS; reduction peak current density plotted versus square root of scan rate.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity

Fe(dhbq) 50 wt% / AB 40 wt% / PTFE 10 wt% cathode · Electrode · 1.5-4.0 V vs Li/Li+; scan rate 0.5 mV/s; Fe(dhbq) 50 wt%, AB 40 wt%, PTFE 10 wt%

Electrochemistry ApplicationCyclic voltammetry

CV under bending

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

TCNQ-MOF-MSC device · Electrode · CV at bending angles of 30, 60 and 90 degrees at 100 mV s^-1; compared with 0 degrees in Figure 4e. Measurements performed using CHI 760D electrochemical workstation.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of flexible asymmetric MSC

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

BQ-MOF-MSC device · Electrode · Areal capacitance calculated from CV curves at a scan rate of 5 mV s^-1. Measurements performed using CHI 760D electrochemical workstation.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of flexible asymmetric MSC

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

MOF-MSC benchmark device · Electrode · Areal capacitance calculated from CV curves at a scan rate of 5 mV s^-1. Measurements performed using CHI 760D electrochemical workstation.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of flexible asymmetric MSC

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

PMDI-MOF-MSC device · Electrode · Areal capacitance calculated from CV curves at a scan rate of 5 mV s^-1. Measurements performed using CHI 760D electrochemical workstation.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of flexible asymmetric MSC

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

TCNQ-MOF-MSC device · Electrode · Areal capacitance calculated from CV curves at a scan rate of 5 mV s^-1. Measurements performed using CHI 760D electrochemical workstation.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

TCNQ, BQ and PMDI in DCM/Bu4NPF6 reference CV solution · Unknown · CV for energy gap in three-electrode cell in dichloromethane solution of Bu4NPF6 (0.1 M), scan rate 50 mV s^-1, room temperature; Pt plate counter electrode, Ag/AgCl reference, glassy carbon working electrode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

BQ@Cu3(BTC)2 thin film on Cu foil · Thin Film · CV curves of doped Cu3(BTC)2 thin films at 50 mV s^-1, used to infer LUMO/HOMO energy levels. CHI 760D electrochemical workstation; DCM/Bu4NPF6 (0.1 M), 50 mV s^-1 at room temperature for energy-level measurements.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

Cu3(BTC)2 thin film on Cu foil · Thin Film · Cu3(BTC)2 electrochemical energy-level measurement; DCM/Bu4NPF6 context from Figure 3 caption for molecule/pristine comparison. CHI 760D electrochemical workstation; DCM/Bu4NPF6 (0.1 M), 50 mV s^-1 at room temperature for energy-level measurements.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

PMDI@Cu3(BTC)2 thin film on Cu foil · Thin Film · CV curves of doped Cu3(BTC)2 thin films at 50 mV s^-1, used to infer LUMO/HOMO energy levels. CHI 760D electrochemical workstation; DCM/Bu4NPF6 (0.1 M), 50 mV s^-1 at room temperature for energy-level measurements.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

TCNQ@Cu3(BTC)2 thin film on Cu foil · Thin Film · CV curves of doped Cu3(BTC)2 thin films at 50 mV s^-1, used to infer LUMO/HOMO energy levels. CHI 760D electrochemical workstation; DCM/Bu4NPF6 (0.1 M), 50 mV s^-1 at room temperature for energy-level measurements.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

commercial IrO2 benchmark · Powder · Cdl determined by CV method from capacitive current versus scan rate for commercial IrO2 benchmark.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Ni-HXR hexagonal nanorods · Powder · Cdl determined by CV method from capacitive current versus scan rate for monometallic Ni-HXR control.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

NiFe-HXR hexagonal nanorods · Powder · Cdl determined by CV method from capacitive current versus scan rate.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Fe-HXR hexagonal nanorods · Powder · O2-saturated 1.0 M KOH electrolyte, typical three-electrode setup; overpotential at 10 mA cm-2.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

commercial IrO2 benchmark · Powder · O2-saturated 1.0 M KOH electrolyte, typical three-electrode setup; commercial IrO2 benchmark.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Ni0.2Fe0.8-HXR · Powder · OER LSV ratio-control sample in 1.0 M KOH.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Ni0.8Fe0.2-HXR · Powder · OER LSV ratio-control sample in 1.0 M KOH.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Ni-HXR hexagonal nanorods · Powder · O2-saturated 1.0 M KOH electrolyte, typical three-electrode setup, scan rate 5 mV s-1; overpotential at 10 mA cm-2.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

NiFe-HXR hexagonal nanorods · Powder · O2-saturated 1.0 M KOH electrolyte, typical three-electrode setup, scan rate 5 mV s-1; overpotential at 10 mA cm-2.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

NiFeOx derived oxide · Powder · OER overpotential at 10 mA cm-2 compared with NiFe-HXR.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

commercial IrO2 benchmark · Powder · Tafel slope for commercial IrO2 OER benchmark.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

Ni-HXR hexagonal nanorods · Powder · Tafel slope for monometallic Ni-HXR OER control.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV

2021 · Enhancing One-Dimensional Charge Transport in Metal-organic Framework Hexagonal Nanorods for Electrocatalytic Oxygen Evolution

NiFe-HXR hexagonal nanorods · Powder · Tafel slopes derived from corresponding LSV curves for OER catalysis.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

NiFe-MOF NSs catalyst ink on glassy carbon · Electrode · Non-Faradaic CV at 10, 20, 30, 40 and 50 mV s^-1; potential range 0.096-0.196 V vs Hg/HgO; Cdl = Ic/v

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry OER testing

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

NiFe-MOF bulk catalyst ink on glassy carbon · Electrode · O2-saturated 1 M KOH, three-electrode cell, LSV 5 mV s^-1, iR-corrected

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry OER testing

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

Fe-MOF catalyst ink on glassy carbon · Electrode · O2-saturated 1 M KOH, three-electrode cell, LSV 5 mV s^-1, iR-corrected

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry OER testing

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

Ni-MOF NSs catalyst ink on glassy carbon · Electrode · O2-saturated 1 M KOH, three-electrode cell, LSV 5 mV s^-1, iR-corrected

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry and chronopotentiometry OER testing

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

NiFe-MOF NSs catalyst ink on glassy carbon · Electrode · O2-saturated 1 M KOH, three-electrode cell, Hg/HgO reference, carbon rod counter, GC disk working electrode, 1200 rpm, LSV 5 mV s^-1, iR-corrected

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry OER testing

2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation

RuO2 benchmark catalyst ink on glassy carbon · Electrode · O2-saturated 1 M KOH, three-electrode cell, LSV 5 mV s^-1, iR-corrected

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2021 · Facile one-pot synthesis of Co coordination polymer spheres doped macroporous carbon and its application for electrocatalytic oxidation of glucose

Co CPSs/MPC-2-GCE · Electrode · Before and after 1.0 mM glucose addition in 0.1 M NaOH; scan rate 50 mV s^-1; n = 10.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry

2021 · Facile one-pot synthesis of Co coordination polymer spheres doped macroporous carbon and its application for electrocatalytic oxidation of glucose

Co CPSs/MPC-2-GCE · Electrode · Glucose concentration 1.0 mM, 0.1 M NaOH, scan rates 5-200 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry Cdl/ECSA estimation

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Co-BTC/CFP HER electrode · Electrode · CV in non-Faradaic 0 to -0.10 V vs RHE window at 10-50 mV s-1; Delta J at -0.05 V vs RHE plotted versus scan rate, slope is twice Cdl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry Cdl/ECSA estimation

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Cu-BTC/CFP HER electrode · Electrode · CV in non-Faradaic 0 to -0.10 V vs RHE window at 10-50 mV s-1; Delta J at -0.05 V vs RHE plotted versus scan rate, slope is twice Cdl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry Cdl/ECSA estimation

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Ni-BTC/CFP HER electrode · Electrode · CV in non-Faradaic 0 to -0.10 V vs RHE window at 10-50 mV s-1; Delta J at -0.05 V vs RHE plotted versus scan rate, slope is twice Cdl.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Co-BTC/CFP HER electrode · Electrode · 0.5 M H2SO4, pH 0.38, 20 mL electrolyte, 5.0 mV s-1 scan rate, Ag/AgCl (3.0 M KCl) reference, Pt paper counter electrode unless otherwise noted.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Cu-BTC/CFP HER electrode · Electrode · 0.5 M H2SO4, pH 0.38, 20 mL electrolyte, 5.0 mV s-1 scan rate, Ag/AgCl (3.0 M KCl) reference, Pt paper counter electrode unless otherwise noted.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry

2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction

Ni-BTC/CFP HER electrode · Electrode · 0.5 M H2SO4, pH 0.38, 20 mL electrolyte, 5.0 mV s-1 scan rate, Ag/AgCl (3.0 M KCl) reference, Pt paper counter electrode unless otherwise noted.

Sensing ApplicationStripping

DPASV ratiometric calibration for simultaneous Cu2+, Pb2+ and Cd2+

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · Optimised DPASV in 0.1 M ABS (pH 6), deposition potential -1.2 V and deposition time 200 s; concentrations 0, 0.001, 0.005, 0.01, 0.05, 0.1, 0.5, 0.8, 1.0, 1.5, 1.8 and 2.0 uM; detection signal IM/IFc.

Electrical TransportCyclic voltammetry

cyclic voltammetry using [Fe(CN)6]3-/4- redox probe

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

bare GCE · Electrode · 0.1 M KCl containing 1.0 mM [Fe(CN)6]3-/4-; potential range -0.2 to 0.6 V; scan rate 0.1 V/s.

Electrical TransportCyclic voltammetry

cyclic voltammetry using [Fe(CN)6]3-/4- redox probe

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · 0.1 M KCl containing 1.0 mM [Fe(CN)6]3-/4-; potential range -0.2 to 0.6 V; scan rate 0.1 V/s.

Electrical TransportCyclic voltammetry

cyclic voltammetry using [Fe(CN)6]3-/4- redox probe

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

NH2-Ni-MOF/GCE · Electrode · 0.1 M KCl containing 1.0 mM [Fe(CN)6]3-/4-; potential range -0.2 to 0.6 V; scan rate 0.1 V/s.

Sensing ApplicationStripping

DPASV heavy-metal-ion peak assignment

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · 0.1 M HAc-NaAc buffer solution; deposition potential -1.2 V, deposition time 100 s unless otherwise stated; stripping amplitude 0.05 V, pulse period 0.2 s, pulse width 0.05 s.

Sensing ApplicationStripping

DPASV experimental-condition optimisation

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · Optimised supporting electrolyte, pH, deposition potential and deposition time for Cu2+, Pb2+ and Cd2+ detection on Fc-NH2-Ni-MOF/GCE.

Sensing ApplicationStripping

DPASV reproducibility across five parallel electrodes

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · 0.1 M ABS (pH 6) containing 1.0 uM each of Cu2+, Pb2+ and Cd2+; five parallel Fc-NH2-Ni-MOF/GCE electrodes.

Sensing ApplicationStripping

DPASV river-water spike recovery with ICP-AES comparison

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · Local Licun river water recovery experiment compared with ICP-AES for Cu2+, Pb2+ and Cd2+.

Sensing ApplicationStripping

DPASV selectivity/interference test

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · 0.1 M ABS (pH 6) with 1.0 uM each Cu2+, Pb2+ and Cd2+; interfering ions Mn2+, Al3+, K+, Ca2+, Na+ and Zn2+ at 5.0 uM each.

Sensing ApplicationStripping

DPASV storage stability

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · Electrode stored at 4 C and tested every 5 days; 0.1 M ABS (pH 6) containing 1.0 uM each of Cu2+, Pb2+ and Cd2+.

Sensing ApplicationStripping

DPASV tap-water spike recovery

2021 · Ferrocene-functionalized Ni(II)-based metal-organic framework as electrochemical sensing interface for ratiometric analysis of Cu2+, Pb2+ and Cd2+

Fc-NH2-Ni-MOF/GCE · Electrode · Real tap water and target-added tap water containing 1.0 uM each of Cu2+, Pb2+ and Cd2+.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Immobilizing Redox-Active Tricycloquinazoline into a 2D Conductive Metal–Organic Framework for Lithium Storage

Cu-HHTQ composite working electrode · Electrode · CV at 0.2 mV s-1 and variable scan rates 0.2-1.0 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Immobilizing Redox-Active Tricycloquinazoline into a 2D Conductive Metal–Organic Framework for Lithium Storage

HHTQ composite working electrode · Electrode · Potential range visually 0.01-3.0 V; scan rate 0.1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Immobilizing Redox-Active Tricycloquinazoline into a 2D Conductive Metal–Organic Framework for Lithium Storage

TQ composite working electrode · Electrode · Potential range 0.01-3.0 V; scan rate 0.1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV in symmetric EDLC

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

acetylene black/PTFE film · Electrode · Acetylene black film electrodes; 1 M NEt4BF4/acetonitrile; 10 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and galvanostatic charge-discharge in symmetric EDLC

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

Cu3(HHTP)2 composite film electrode · Electrode · Cu3(HHTP)2 composite film electrodes; 1 M NEt4BF4 in acetonitrile; CV scan rate 10 mV s-1; GCD current densities varied.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in symmetric EDLC without conductive additive

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

Cu3(HHTP)2/PTFE film without conductive additive · Electrode · 95 wt% Cu3(HHTP)2/5 wt% PTFE electrodes; 1 M NEt4BF4/acetonitrile; very low scan rates/current densities required.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode cyclic voltammetry

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

Cu3(HHTP)2 composite film electrode · Electrode · Cu3(HHTP)2 composite working electrode; overcapacitive YP50F counter electrode; Ag pseudo-reference; 1 M NEt4BF4/acetonitrile; dry oxygen-free N2 glovebox.

Electrochemistry ApplicationCyclic voltammetry

GCD with increasing final cell voltages and CV stress test

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

Cu3(HHTP)2 composite film electrode · Electrode · Symmetric Cu3(HHTP)2 EDLC; 0.1 A g-1 GCD with increasing final voltages; CV up to 1.6 V at 10 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD rate and cycle testing in symmetric EDLC

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

YP50F activated-carbon film electrode · Electrode · YP50F film electrodes; 1 M NEt4BF4/acetonitrile; 0-2.5 V; coin-cell format.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV scan-rate series

2021 · Linker Defects Triggering Boosted Oxygen Reduction Activity of Co/Zn-ZIF Nanosheet Arrays for Rechargeable Zn–Air batteries

D-ZIF linker-deficient nanosheet array on Ni foam · Electrode · CVs at 4, 8, 12, 16 and 20 mV s-1 used to estimate Cdl and ECSA.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

OER CV, LSV, Tafel and chronopotentiometry

2021 · Linker Defects Triggering Boosted Oxygen Reduction Activity of Co/Zn-ZIF Nanosheet Arrays for Rechargeable Zn–Air batteries

D-ZIF linker-deficient nanosheet array on Ni foam · Electrode · N2-saturated 0.1 M KOH; OER LSV at 5 mV s-1; chronopotentiometry at 10 mA cm-2 for 10 h.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

ORR CV and linear sweep voltammetry

2021 · Linker Defects Triggering Boosted Oxygen Reduction Activity of Co/Zn-ZIF Nanosheet Arrays for Rechargeable Zn–Air batteries

D-ZIF linker-deficient nanosheet array on Ni foam · Electrode · Three-electrode system in 0.1 M KOH; CV in N2- and O2-saturated electrolyte at 10 mV s-1; ORR LSV at 5 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Metal-organic framework transistors for dopamine sensing

15-cycle Cu3(HHTP)2 film on glass · Thin Film · Cu3(HHTP)2 film in 0.1 M CaCl2 before and after DA additions; scan rate 50 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

AcOH titration cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

PCN-700_NDI_FeFe MOF/carbon black/Nafion glassy-carbon electrode · Electrode · DMF with 0.5 M KPF6; scan rate 50 mV/s; increasing acetic acid; includes homogeneous linkers and MOF electrodes.

Electrochemistry ApplicationCyclic voltammetry

Integrated current from cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

PCN-700_NDI_FeFe MOF/carbon black/Nafion glassy-carbon electrode · Electrode · PCN-700_NDI_FeFe in DMF with 0.5 M KPF6; integration at 5 mV/s and 500 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

[FeFe](dcbdt)(CO)6 homogeneous solution · Model · 1 mM [FeFe](dcbdt)(CO)6 in DMF with 0.5 M KPF6; glassy carbon working electrode; scan rate 50 mV/s; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

PCN-700_NDI_FeFe MOF/carbon black/Nafion glassy-carbon electrode · Electrode · MOF/carbon black/Nafion on glassy carbon; DMF with 0.5 M KPF6; scan rate 50 mV/s; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

NDI-OMe homogeneous solution · Model · 1 mM NDI-OMe in DMF with 0.5 M KPF6; glassy carbon working electrode; scan rate 50 mV/s; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

PCN-700_NDI_ta MOF/carbon black/Nafion glassy-carbon electrode · Electrode · MOF/carbon black/Nafion on glassy carbon; DMF with 0.5 M KPF6; scan rate 50 mV/s; potentials vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent cyclic voltammetry

2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport

PCN-700_NDI_FeFe MOF/carbon black/Nafion glassy-carbon electrode · Electrode · DMF with 0.5 M KPF6; variable scan rates from 5 to 1000 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and Randles-Sevcik diffusion coefficient analysis

2021 · Processable UiO-66 Metal-Organic Framework Fluid Gel and Electrical Conductivity of Its Nanofilm with Sub-100 nm Thickness

60 nm UiO-66 nanofilm · Thin Film · MOF film on cleaned glass as working electrode; Ag/AgCl reference, Pt rod counter electrode, 0.1 M KCl electrolyte; 0.0 to -1.0 V; scan rates 10, 20, 30, 40, and 50 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

CV scan-rate and capacitive/diffusive contribution analysis

2021 · Quinone-Based Conducting Three-Dimensional Metal-Organic Framework as a Cathode Material for Lithium-Ion Batteries

(NBu4)2Fe2(DHBQ)3/Super P/PVDF lithium-ion cathode electrode · Electrode · CV at 0.1, 0.2, 0.3, 0.5, 0.8, 1.0 and 2.0 mV/s; ip-v^0.5 and log(i)-log(v) analyses.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Quinone-Based Conducting Three-Dimensional Metal-Organic Framework as a Cathode Material for Lithium-Ion Batteries

(NBu4)2Fe2(DHBQ)3/Super P/PVDF lithium-ion cathode electrode · Electrode · Li-ion half-cell CV at 0.1 mV/s between 1.5 and 3.5 V vs Li+/Li.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with CHI600D potentiostat

2021 · Redox Ladder of Ni3 Complexes with Closed-Shell, Mono-, and Diradical Triphenylene Units: Molecular Models for Conductive 2D MOFs

crude [(Me3TPANi)3(HOTP)](BF4)n mixture · Unknown · Crude mixture in 0.2 M TBAPF6-dichloromethane under nitrogen.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with CHI600D potentiostat

2021 · Redox Ladder of Ni3 Complexes with Closed-Shell, Mono-, and Diradical Triphenylene Units: Molecular Models for Conductive 2D MOFs

complex 2 dark blue needle-shaped crystals · Single Crystal · 0.2 M TBAPF6 in dichloromethane under nitrogen; glassy carbon working electrode, Pt mesh counter electrode and Ag/AgCl wire pseudo-reference; potentials reported vs Fc+/Fc.

Electrochemistry ApplicationLinear sweep

RRDE linear sweep voltammetry and H2O2 selectivity calculation

2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs

Br-Ni MOF catalyst · Powder · O2-saturated 0.1 M KOH; CHI760E workstation; RRDE electrodes; LSV at 20 mV/s after cycling; catalyst loading about 0.2 mg/cm2; 1600 rpm for Figure 2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Si nanoparticles confined within a conductive 2D porous Cu-based metal–organic framework (Cu3(HITP)2) as potential anodes for high-capacity Li-ion batteries

pure Cu3(HITP)2 electrode · Electrode · Pure Cu3(HITP)2 electrode in 0.005-1.5 V vs Li/Li+ at 0.1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Si nanoparticles confined within a conductive 2D porous Cu-based metal–organic framework (Cu3(HITP)2) as potential anodes for high-capacity Li-ion batteries

Si@Cu3(HITP)2-5 electrode · Electrode · 0.005-1.5 V vs Li/Li+, scan rate 0.1 mV s-1 according to figure caption; experimental section states 0.01 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2021 · Simultaneous defect passivation and hole mobility enhancement of perovskite solar cells by incorporating anionic metal-organic framework into hole transport materials

synthesised FJU-17 powder · Powder · CHI600A; Pt disc working electrode, Pt wire counter, Ag/AgCl reference, 50 mV/s, 0.1 M Bu4NPF6 acetonitrile; potentials referenced to Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

CV of assembled ionic actuator

2021 · Soft Electrochemical Actuators with a Two-Dimensional Conductive Metal-Organic Framework Nanowire Array

Ni-CAT NWAs/CNF based electrochemical actuator · Electrode · Assembled actuator CV at scan rates 5-150 mV s^-1 over -3 to +3 V.

Electrochemistry ApplicationCyclic voltammetry

three-electrode CV and GCD

2021 · Soft Electrochemical Actuators with a Two-Dimensional Conductive Metal-Organic Framework Nanowire Array

core-shell Ni-CAT NWAs/CNF electrode · Electrode · Ni-CAT NWAs/CNF working electrode in 3 M KCl; Ag/AgCl reference and Pt counter; CV from -0.4 to 0.5 V at 5-150 mV s^-1; GCD 0-0.5 V at different current densities.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV)

2021 · Stabilization of NASICON-Type Electrolyte against Li Anode via an Ionic Conductive MOF-Incorporated Adhesive Interlayer

ZCPL film/interlayer · Thin Film · ZCPL and PEO/LiTFSI at 60 C; inset zoom around 4 V

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for ECSA/Cdl

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-NiFex powder series · Powder · CV tests in non-faradaic region at scan rates from 20 to 200 mV s-1; Cdl from scan-rate-dependent current density at 0.92 V vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-NiFe0.05/acetylene black/Nafion on glassy carbon electrode · Electrode · Oxygen-saturated 1.0 M KOH, three-electrode system, 298 K, 95% iR correction, 10 mV s-1, 1.07-1.87 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-NiFe0.09/acetylene black/Nafion on glassy carbon electrode · Electrode · Oxygen-saturated 1.0 M KOH, three-electrode system, 298 K, 95% iR correction, 10 mV s-1, 1.07-1.87 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-NiFe0.20/acetylene black/Nafion on glassy carbon electrode · Electrode · Oxygen-saturated 1.0 M KOH, three-electrode system, 298 K, 95% iR correction, 10 mV s-1, 1.07-1.87 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-Fe/acetylene black/Nafion on glassy carbon electrode · Electrode · Oxygen-saturated 1.0 M KOH, three-electrode system, 298 K, 95% iR correction, 10 mV s-1, 1.07-1.87 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-Ni/acetylene black/Nafion on glassy carbon electrode · Electrode · Oxygen-saturated 1.0 M KOH, three-electrode system, 298 K, 95% iR correction, 10 mV s-1, 1.07-1.87 V.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

Commercial RuO2 on glassy carbon electrode · Electrode · Commercial RuO2 benchmark before and after 1000 CV cycles in OER comparison.

Electrochemistry ApplicationLinear sweep

Cycling durability LSV

2021 · Structural and electronic modulation of conductive MOFs for efficient oxygen evolution reaction electrocatalysis

NiPc-NiFe0.09/acetylene black/Nafion on glassy carbon electrode · Electrode · OER LSV before/after 1000 CV cycles at 50 mV s-1 and after 3000 CV cycles.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode CV and GCD

2021 · Sulfur vacancies enriched Nickel-Cobalt sulfides hollow spheres with high performance for All-Solid-State hybrid supercapacitor

r-NiCo2S4-6 HSs // N/S-AC device · Electrode · All-solid-state hybrid device tested over 0-1.6 V at various scan rates and current densities.

Electrochemistry ApplicationCyclic voltammetry

Scan-rate-dependent CV kinetic analysis

2021 · Sulfur vacancies enriched Nickel-Cobalt sulfides hollow spheres with high performance for All-Solid-State hybrid supercapacitor

r-NiCo2S4-6 HSs working electrode · Electrode · CV scans from 1 to 5 mV s-1 used for peak-current linearity, b-value, and capacitive/diffusion contribution analysis.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge in three-electrode configuration

2021 · Sulfur vacancies enriched Nickel-Cobalt sulfides hollow spheres with high performance for All-Solid-State hybrid supercapacitor

r-NiCo2S4-6 HSs working electrode · Electrode · 3 M KOH aqueous electrolyte, Pt counter electrode, Hg/HgO reference electrode; CV 0-0.55 V vs Hg/HgO and GCD 1-15 A g-1.

Electrochemistry ApplicationCyclic voltammetry

activated carbon cyclic voltammetry

2021 · Synthesis of a novel double-ligand nickel conductive metal–organic framework material and its electrochemical characterization for supercapacitors

activated carbon control electrode · Electrode · Commercial AC control electrode CV in approximately -1.0 to 0.0 V window at scan rates labelled 10, 20, 40, 60 and 100 mV s-1 in Fig. S3b.

Electrochemistry ApplicationCyclic voltammetry

ASC cyclic voltammetry

2021 · Synthesis of a novel double-ligand nickel conductive metal–organic framework material and its electrochemical characterization for supercapacitors

Ni-MOF//AC ASC device · Electrode · Ni-MOF//AC ASC tested across voltage windows 0-1.1 to 0-1.6 V and at scan rates 10, 30, 50, 80 and 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in three-electrode system

2021 · Synthesis of a novel double-ligand nickel conductive metal–organic framework material and its electrochemical characterization for supercapacitors

Ni-MOF working electrode on nickel foam · Electrode · Ni-MOF working electrode, activated carbon counter electrode, Hg/HgO reference, 3 M KOH electrolyte, potential range 0-0.5 V; scan rates 10, 30, 50, 80 and 100 mV s-1 from Figure 4a.

SpectroscopyCyclic voltammetry

UV-VIS-NIR absorption/Tauc plot plus CV against ferrocene reference

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Co-MOF exfoliated nanosheets · Nanosheet · Exfoliated Co-MOF suspended in water for UV-VIS-NIR; CV on glassy carbon under ambient pressure and N2 atmosphere using Ag/Ag+ reference and ferrocene calibration.

SpectroscopyCyclic voltammetry

UV-VIS-NIR absorption/Tauc plot plus CV against ferrocene reference

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Mn-MOF exfoliated nanosheets · Nanosheet · Exfoliated Mn-MOF suspended in water for UV-VIS-NIR; CV on glassy carbon under ambient pressure and N2 atmosphere using Ag/Ag+ reference and ferrocene calibration.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in symmetric 2032 coin-cell supercapacitor

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Mn-MOF-NC electrode · Electrode · Two-electrode symmetric SC using 1 mol L-1 LiTFSI in 1,3-dioxolane/dimethoxyethane; potential window 0-2.25 V; room temperature 25 degrees C.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in symmetric 2032 coin-cell supercapacitor

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Co-MOF-NC electrode · Electrode · Two-electrode symmetric SC using 1 mol L-1 LiTFSI in 1,3-dioxolane/dimethoxyethane; potential window 0-2.25 V; room temperature 25 degrees C.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry-derived double-layer capacitance

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

NiPc-Ni catalyst ink on glassy carbon · Electrode · CV in non-faradaic 0.87-0.97 V vs RHE window at 20-200 mV s^-1; Cdl from current-density change versus scan rate.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

NiPc-Ni catalyst ink on glassy carbon · Electrode · Three-electrode cell, 1 M O2-saturated KOH, 298 K, SCE reference, graphite rod counter, GC working electrode; 0.01 V s^-1 scan rate, 95% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

NiPc-Zn catalyst ink on glassy carbon · Electrode · Three-electrode cell, 1 M O2-saturated KOH, 298 K; 0.01 V s^-1 scan rate, 95% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

ZnPc-Ni catalyst ink on glassy carbon · Electrode · Three-electrode cell, 1 M O2-saturated KOH, 298 K; 0.01 V s^-1 scan rate, 95% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

ZnPc-Zn catalyst ink on glassy carbon · Electrode · Three-electrode cell, 1 M O2-saturated KOH, 298 K; 0.01 V s^-1 scan rate, 95% iR correction.

Electrochemistry ApplicationLinear sweep

Turnover frequency calculated from LSV curves

2021 · Two-dimensional conductive metal-organic frameworks with dual metal sites toward the electrochemical oxygen evolution reaction

NiPc-Ni catalyst ink on glassy carbon · Electrode · TOF at applied potential 1.8 V; active sites treated as surface Ni atoms and AECSA derived from Cdl using 40 uF cm^-2 per cm_ECSA^2.

Sensing ApplicationCyclic voltammetry

CV electrocatalytic ascorbic acid oxidation

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

1-GCE · Electrode · 0.5 M sulfuric acid electrolyte containing AA at 0, 0.5, 1.0, 1.5, and 2.0 mM.

Sensing ApplicationCyclic voltammetry

CV electrocatalytic ascorbic acid oxidation

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

2-GCE · Electrode · 0.5 M sulfuric acid electrolyte containing AA at 0, 0.5, 1.0, 1.5, and 2.0 mM.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

1-GCE · Electrode · 0.5 M H2SO4 solution; three-electrode cell; potentials vs saturated calomel electrode; scan rates 20-200 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

2-GCE · Electrode · 0.5 M H2SO4 solution; three-electrode cell; potentials vs saturated calomel electrode; scan rates 20-200 mV s-1.

Sensing ApplicationCyclic voltammetry

CV electrocatalytic nitrite reduction

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

1-GCE · Electrode · 0.5 M sulfuric acid electrolyte containing NO2- at 0, 0.5, 1.0, 1.5, and 2.0 mM; scan rate 30 mV s-1.

Sensing ApplicationCyclic voltammetry

CV electrocatalytic nitrite reduction

2021 · Wells-Dawson Arsenotungstate Porous Derivatives for Electrochemical Supercapacitor Electrodes and Electrocatalytically Active Materials

2-GCE · Electrode · 0.5 M sulfuric acid electrolyte containing NO2- at 0, 0.5, 1.0, 1.5, and 2.0 mM; scan rate 30 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in a three-electrode cell using Biologic SP 200 potentiostat.

2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study

HITP_A neat-MOF electrode · Electrode · 1 M KOH(aq), Ag/AgCl pseudo-reference, activated-carbon/carbon-black/PVDF counter electrode, voltage range -0.6 to -0.1 V vs Ag/AgCl, sweep rates 1 V s-1 to 1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in a three-electrode cell using Biologic SP 200 potentiostat.

2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study

HITP_B neat-MOF electrode · Electrode · 1 M KOH(aq), Ag/AgCl pseudo-reference, activated-carbon/carbon-black/PVDF counter electrode, voltage range -0.6 to -0.1 V vs Ag/AgCl, sweep rates 1 V s-1 to 1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in a three-electrode cell using Biologic SP 200 potentiostat.

2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study

HITP_C neat-MOF electrode · Electrode · 1 M KOH(aq), Ag/AgCl pseudo-reference, activated-carbon/carbon-black/PVDF counter electrode, voltage range -0.6 to -0.1 V vs Ag/AgCl, sweep rates 1 V s-1 to 1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · A conductive anionic Co-MOF cage with zeolite framework for supercapacitors

Co-MOF on Ni foam · Electrode · CHI660E workstation; three-electrode cell; 3.0 mol/L KOH; Pt counter; Hg/HgO reference; potential range 0.0-0.5 V; scan rates 5-200 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of CTAB series

2020 · A conductive anionic Co-MOF cage with zeolite framework for supercapacitors

Co-CTAB-6 · Electrode · CV curves at 10 mV/s for Co-MOF and Co-CTAB-1/2/4/6/8 in 3 mol/L KOH; oxidation peak currents and ratios tabulated.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · A conductive metal-organic framework photoanode

H4TTFTB in DMF/TBAPF6 electrolyte · Unknown · DMF electrolyte (0.1 M TBAPF6), glassy carbon working electrode, Pt counter electrode and Ag/AgCl reference in N2-purged cell.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Biporous Cd(II) Coordination Polymer via in Situ Disulfide Bond Formation: Self-Healing and Application to Photosensitive Optoelectronic Device

Bulk/crude material of compound 1 · Powder · Glass carbon electrode with deposit of compound 1 at 296 K in CH3CN, 0.2 M [N(n-Bu)4]PF6, scan rate 100 mV/s, potential range +2.0 to -2.0 V, Fc+/Fc reference.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Conductive Metal-Organic Framework Thin Film Hybrids by Electropolymerization of Monosubstituted Acetylenes

1-hexyne-loaded Cu(BDC) SURMOF-2 · Thin Film · Dry dichloromethane with 0.1 M TBAHFP/TBAF supporting electrolyte, argon atmosphere in main text; 20 mM 1-hexyne present or absent; working electrode Cu(BDC)/(Au@Si), counter Pt-wire, reference Ag/Ag+.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry control test

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

Bare GCE control electrode · Electrode · Bare GCE cycled in PBS (pH = 6.5) for comparison with NiCu-CAT/GCE in the paracetamol electrochemical study.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry electrocatalysis test

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · 40 uM paracetamol in PBS (pH = 6.5), potential window -0.8 to 0.8 V, scan rate 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry pH-dependence test

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · 50 uM paracetamol at NiCu-CAT/GCE in 0.1 M PBS at pH 5.5, 6.0, 6.5, 7.0 and 8.0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate dependence

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · 40 uM paracetamol on NiCu-CAT/GCE at scan rates of 10, 20, 50, 100, 200 and 300 mV/s.

Sensing ApplicationDifferential pulse

DPV selectivity / interference test

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · 40 uM paracetamol with 5-fold dopamine and ascorbic acid; 100-fold K+, Cd2+, Cu2+, Pb2+, Fe3+, Al3+, SO4^2- and Cl-.

Sensing ApplicationDifferential pulse

DPV real-sample tablet analysis

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · Commercial Tylenol tablet nominally containing 650 mg paracetamol; tablets ground, dissolved with ethanol, filtered and diluted with phosphate buffer solution.

Sensing ApplicationDifferential pulse

DPV repeatability / reproducibility test

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · Five repeated modified-electrode tests for 40 uM paracetamol under optimised conditions.

Sensing ApplicationDifferential pulse

DPV stability test after storage in air

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE sensing electrode · Electrode · 40 uM paracetamol in 0.1 mol L^-1 PBS at pH 6.5 after storage in air for 7 and 30 days.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry stability traces from SI

2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol

NiCu-CAT/GCE after air storage for 7-30 days · Electrode · Supplementary Figure 5 overlays DPV responses labelled 1 d, 7 d and 30 d, current vs potential around the paracetamol peak.

Electrochemistry ApplicationLinear sweep

Supplementary LSV acetylene-black control

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

pure acetylene black · Powder · Rendered SI Fig. S8 compares pure acetylene black, LSCF@Ni3(HITP)2-2 and LSCF@Ni3(HITP)2-2 plus acetylene black.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from non-Faradaic CV

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-2 · Powder · CV curves in non-Faradaic range 1.15-1.25 V vs RHE at scan rates 20, 40, 60, 80, 100 and 120 mV s-1; Cdl derived from ja-jc slope at 1.2 V vs RHE.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF NFs · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1 from 1.0 to 1.8 V vs RHE; iR-corrected; catalyst loading about 0.306 mg_total cm-2.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-1 · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-2 · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-3 · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-4 · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

bare Ni3(HITP)2 · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry for OER

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

RuO2 benchmark catalyst · Powder · O2-saturated 1.0 M KOH, 1600 rpm, scan rate 5 mV s-1; same mass loading as other catalysts.

Electrochemistry ApplicationLinear sweep

Tafel analysis from OER LSV

2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers

LSCF@Ni3(HITP)2-2 · Powder · Tafel slopes from corresponding OER polarisation curves in 1.0 M KOH, Fig. 4c.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Ni3(HITP)2 modified rotating disk electrode · Electrode · Same HER LSV conditions as target: N2-saturated 0.1 M KOH, 1600 rpm, 5 mV s-1, 95% iR correction.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Ni3(Ni3.HAHATN)2 modified rotating disk electrode · Electrode · Three-electrode CHI 760E workstation; graphite counter electrode; saturated calomel reference; N2-saturated 0.1 M KOH; 1600 rpm; 5 mV s-1; 95% iR correction; potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER across M23(M13.HAHATN)2 variants

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Ni3(Co3.HAHATN)2 modified rotating disk electrode · Electrode · Same LSV conditions: N2-saturated 0.1 M KOH, 1600 rpm, 5 mV s-1, 95% iR correction.

Electrochemistry ApplicationCyclic voltammetry

Durability by repeated CV, chronoamperometry, post-test XRD/TEM/SEM

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Ni3(Ni3.HAHATN)2 modified rotating disk electrode · Electrode · HER stability in 0.1 M KOH; repeated CV for 1000 cycles; chronoamperometry at 10 and 50 mA cm-2 for 10 h.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV curves

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Ni3(Ni3.HAHATN)2 modified rotating disk electrode · Electrode · Tafel plots of M23(M13.HAHATN)2 and Ni3(HITP)2 samples obtained from LSV curves by the Tafel equation.

Electrochemistry ApplicationCyclic voltammetry

double-layer capacitance from CV

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

[Ni5.7Ru0.3(HHTP)3(H2O)x]n catalyst layer on GC-RDE · Electrode · Cdl estimated from CV curves in a non-Faradaic region of 0.95-1.05 V vs RHE at scan rates 20-100 mV s-1.

Electrochemistry ApplicationLinear sweep

OER LSV and chronoamperometry

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

[Ni5.7Ru0.3(HHTP)3(H2O)x]n catalyst layer on GC-RDE · Electrode · Three-electrode cell in O2/N2 saturated 0.1 M KOH; potentials iR corrected and converted to RHE.

Electrochemistry ApplicationLinear sweep

OER LSV/Tafel comparator

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

commercial RuO2 OER electrode · Electrode · Commercial RuO2 comparator for OER in 0.1 M KOH.

Electrochemistry ApplicationLinear sweep

ORR LSV/Tafel comparator

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

commercial Pt/C ORR electrode · Electrode · Commercial Pt/C comparator for ORR in 0.1 M KOH.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

ORR CV, LSV, chronoamperometry and RRDE

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

[Ni5.7Ru0.3(HHTP)3(H2O)x]n catalyst layer on GC-RDE · Electrode · ORR in O2-saturated 0.1 M KOH; CV sweep 10 mV s-1 after gas purging; RRDE electron-transfer number from disk/ring currents.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD, EIS, and cycling of 8OH-DBC ligand control

2020 · Conjugated Copper–Catecholate Framework Electrodes for Efficient Energy Storage

8OH-DBC ligand electrochemical control · Model · 1 M NaCl comparison with Cu-DBC; CV at 1 mV s-1; GCD at 0.2 A g-1 and cycling at 5 A g-1.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV, GCD, and EIS

2020 · Conjugated Copper–Catecholate Framework Electrodes for Efficient Energy Storage

Cu-DBC-modified glassy carbon electrode · Electrode · 1 M NaCl aqueous electrolyte; SCE reference, Pt wire counter electrode; CV -0.5 to 0.2 V vs SCE at 1-100 mV s-1; GCD at 0.2-10.0 A g-1; EIS 10 mHz to 100 kHz.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

AgOTf cyclic-voltammetry control · Unknown · AgOTf control measured to identify Ag+ reduction response in the same CV context.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

[Ag2(HATHCN)(CF3SO3)2]n paste on glassy carbon electrode · Electrode · MOF/MeNO2 paste on glassy carbon working electrode; Ag/AgCl reference, Pt-mesh counter electrode, 0.1 M Bu4NPF6 in MeNO2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

Free HATHCN ligand powder/crystals · Powder · Free HATHCN control measured in the same CV context: glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter electrode, 0.1 M Bu4NPF6 in MeNO2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry on Au/SiO2 electrode before Cu deposition

2020 · Electrochemical deposition and thermoelectric characterisation of a semiconducting 2-D metal-organic framework thin film

Cu3(HHTP)2@Au/SiO2 as-deposited film · Thin Film · 0.01 M CuSO4 and 0.1 M KCl, SCE reference, Pt counter; scan rate 120 mV s-1; electrode area 1 cm2

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

Cu-MOF/GCE electrode · Electrode · CV in 0.1 M KCl used to optimise Cu-MOF deposition potential and deposition time.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE biosensor · Electrode · Optimisation of DNA aptamer concentration and target incubation times.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE after S. aureus cell capture · Electrode · Direct S. aureus cell detection over the same concentration series.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

AuNPs/Cu-MOF/GCE electrode · Electrode · DPV in Fe(CN)6 redox electrolyte; 50 mV/s sweep, 50 ms pulse width, 0.2 s pulse period, voltage range reported as -0.2 to -0.6 V.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE after S. aureus supernatant exposure · Electrode · 10 uL S. aureus supernatant; concentration series 0, 7, 7e1, 7e2, 7e3, 7e4, 7e5 and 7e6 cfu/mL.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE after S. aureus cell capture · Electrode · S. aureus cells spiked in urine; n = 3.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE after S. aureus supernatant exposure · Electrode · S. aureus supernatant spiked in urine; n = 3.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE biosensor · Electrode · Selectivity against E. coli and L. monocytogenes supernatants/cells at 7 x 10^3 cfu/mL in PBS.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical deposition of Cu metal-organic framework films for the dual analysis of pathogens

DNA/AuNPs/Cu-MOF/GCE biosensor · Electrode · Specificity after incubating samples at 100 deg C for 20 min; Exo1, DNase1, S. aureus supernatant/MNase and mixture in urine.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

Au NPs@ZIF-8/OMC/GCE · Electrode · CV in 0.1 M KCl containing 5 mM Fe(CN)6(3-/4-) at 50 mV s-1, comparing Au@ZIF-8/OMC/GCE, bare GCE, Au@ZIF-8/GCE, ZIF-8/GCE, anti-CEA/Au@ZIF-8/OMC/GCE and CEA/anti-CEA/Au@ZIF-8/OMC/GCE.

Sensing ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

CEA/anti-CEA/Au NPs@ZIF-8/OMC/GCE · Electrode · DPV response curves for CEA concentrations 0.005, 0.05, 0.5, 5, 50, 100, 200 and 400 ng mL-1 under optimised conditions; 0 to 0.6 V, 50 mV pulse amplitude, 50 ms width.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

Au NPs@ZIF-8/OMC/GCE · Electrode · DPV current change (Delta I_DPV) for 100 ng mL-1 CEA using electrodes modified by ZIF-8, Au@ZIF-8, OMC, ZIF-8/OMC and Au@ZIF-8/OMC in 0.1 M KCl containing 5 mM Fe(CN)6(3-/4-), n = 3.

Sensing ApplicationDifferential pulse

DPV optimisation

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

CEA/anti-CEA/Au NPs@ZIF-8/OMC/GCE · Electrode · Optimisation of Au@ZIF-8:OMC ratio, anti-CEA loading, reaction time, incubation temperature and pH.

Sensing ApplicationDifferential pulse

DPV serum recovery and chemiluminescence comparison

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

CEA/anti-CEA/Au NPs@ZIF-8/OMC/GCE · Electrode · Human serum samples diluted 100-fold by PBS; recovery test with 10, 50 and 100 ng mL-1 CEA; comparison to Siemens Advia Centaur XP chemiluminescence immunoassay analyser.

Sensing ApplicationDifferential pulse

DPV specificity and reproducibility tests

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

CEA/anti-CEA/Au NPs@ZIF-8/OMC/GCE · Electrode · Specificity for 10 ng mL-1 CEA with AFP, HCG, BSA or IgG interferents; six independently fabricated electrodes for reproducibility at 5 ng mL-1 CEA.

Sensing ApplicationDifferential pulse

DPV storage stability

2020 · Electrochemical immunoassay for the carcinoembryonic antigen based on Au NPs modified zeolitic imidazolate framework and ordered mesoporous carbon

CEA/anti-CEA/Au NPs@ZIF-8/OMC/GCE · Electrode · Modified electrodes stored in PBS at 4 C and DPV current responses recorded after 0, 7 and 10 days.

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CF-1 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1, iR-drop/background corrected

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CF-2 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1, iR-drop/background corrected

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CF-3 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1, iR-drop/background corrected

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CF-4 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1, iR-drop/background corrected

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CF-5 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry before CA treatment

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CoFe-PBA@CC · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

CoHC@CC · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

NF-2 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1; compared with CF-2 and NiHC@CC

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

NiHC@CC · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1

Electrochemistry ApplicationCyclic voltammetry

OER cyclic voltammetry

2020 · Electrochemical Transformation of Metal Organic Framework into Ultrathin Metal Hydroxide-(oxy)hydroxide Nanosheets for Alkaline Water Oxidation

commercial RuO2 · Electrode · 1.0 M aqueous KOH, scan rate 2 mV s-1; commercial benchmark

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

HMCS · Powder · 0.1 M KOH, O2-saturated, 1600 rpm

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel benchmark

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

IrO2 bulk · Powder · 0.1 M KOH, O2-saturated, 1600 rpm

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

pure ZIF-67 · Powder · 0.1 M KOH, O2-saturated, 1600 rpm

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-10% · Powder · 0.1 M KOH; O2-saturated OER LSV at 1600 rpm after iR compensation; Table S2 comparison.

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-25% catalyst ink electrode · Electrode · 0.1 M KOH, O2-saturated, 1600 rpm, iR-compensated, scan 5 mV s^-1

Electrochemistry ApplicationLinear sweep

OER RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-50% · Powder · 0.1 M KOH; O2-saturated OER LSV at 1600 rpm after iR compensation; Table S2 comparison.

Electrochemistry ApplicationLinear sweep

ORR RDE LSV comparison

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

Co-HMCS · Powder · 0.1 M KOH; RDE/RRDE where applicable; O2-saturated; ORR LSV/Tafel/K-L comparison in Table S2.

Electrochemistry ApplicationLinear sweep

ORR RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

HMCS · Powder · 0.1 M KOH, O2-saturated

Electrochemistry ApplicationLinear sweep

ORR RDE LSV and Tafel benchmark

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

20 wt% Pt/C · Powder · 0.1 M KOH, O2-saturated

Electrochemistry ApplicationLinear sweep

ORR RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

pure ZIF-67 · Powder · 0.1 M KOH, O2-saturated, 1600 rpm where applicable

Electrochemistry ApplicationLinear sweep

ORR RDE LSV comparison

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@BHMCS-25% · Powder · 0.1 M KOH; RDE/RRDE where applicable; O2-saturated; ORR LSV/Tafel/K-L comparison in Table S2.

Electrochemistry ApplicationLinear sweep

ORR RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-10% · Powder · 0.1 M KOH; RDE/RRDE where applicable; O2-saturated; ORR LSV/Tafel/K-L comparison in Table S2.

Electrochemistry ApplicationLinear sweep

ORR RDE/RRDE LSV, Tafel, Koutecky-Levich analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-25% catalyst ink electrode · Electrode · 0.1 M KOH, O2-saturated, 1600 rpm where applicable, iR-compensated

Electrochemistry ApplicationLinear sweep

ORR RDE LSV and Tafel analysis

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF@HMCS-50% · Powder · 0.1 M KOH; RDE/RRDE where applicable; O2-saturated; ORR LSV/Tafel/K-L comparison in Table S2.

Electrochemistry ApplicationLinear sweep

ORR RDE LSV comparison

2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst

ZIF/HMCS-25% · Powder · 0.1 M KOH; RDE/RRDE where applicable; O2-saturated; ORR LSV/Tafel/K-L comparison in Table S2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2020 · Enhanced bioelectrochemical performance caused by porous metal-organic framework MIL-53(Fe) as the catalyst in microbial fuel cells

MIL-53(Fe)-coated glassy carbon electrode · Electrode · CHI660E electrochemical workstation; conventional three-electrode system; 50 mM PBS; GCE coated catalyst working electrode; SCE reference electrode; Pt sheet counter electrode; O2-saturated and O2-free PBS for ORR comparison.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV)

2020 · Enhanced bioelectrochemical performance caused by porous metal-organic framework MIL-53(Fe) as the catalyst in microbial fuel cells

MIL-53(Fe)/SS air cathode · Electrode · LSV comparison of MIL-53(Fe)/SS and bare SS under the electrochemical test conditions reported for ORR.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of NOCA@CF as binder-free LIB anode

2020 · Heteroatom-doped 3D porous carbon architectures for highly stable aqueous zinc metal batteries and non-aqueous lithium metal batteries

NOCA@CF · Electrode · First five continuous CV profiles of NOCA@CF anode for lithium-ion batteries.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry glucose calibration in NaOH

2020 · High-performance non-enzymatic glucose detection: Using a conductive Ni-MOF as an electrocatalyst

Conductive Ni-MOF working electrode · Electrode · Glucose concentrations 1.0-8.0 mM in 0.1 M NaOH; potential range 0-0.8 V; scan rate 20 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for glucose oxidation

2020 · High-performance non-enzymatic glucose detection: Using a conductive Ni-MOF as an electrocatalyst

Conductive Ni-MOF working electrode · Electrode · 0.1 M NaOH; absence/presence of 1 mM glucose; scan rate 20 mV s-1; potential range 0-0.8 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry at varied scan rate

2020 · High-performance non-enzymatic glucose detection: Using a conductive Ni-MOF as an electrocatalyst

Conductive Ni-MOF working electrode · Electrode · Conductive Ni-MOF with 1 mM glucose; scan rates from 20 to 200 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Highly Conductive Two-Dimensional Metal-Organic Frameworks for Resilient Lithium Storage with Superb Rate Capability

Cu-BHT/CNT/PVDF cathode, 70:20:10 · Electrode · scan rates 0.1 to 0.8 mV s-1; 1.5-3.0 V vs Li+/Li

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry double-layer capacitance

2020 · Highly Dispersed MoO2Nanoparticles Confined in N-Doped Porous Carbon Nanosheets for Efficient Hydrogen Evolution in Alkaline Media

MoO2 NPs@N-C NSs/NF · Electrode · CVs in nonfaradaic region 0.05-0.55 V vs RHE at 10, 30, 40, 50, 60, and 80 mV s-1 in 1.0 M KOH; charging current at 0.3 V.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry (LSV)

2020 · Highly Dispersed MoO2Nanoparticles Confined in N-Doped Porous Carbon Nanosheets for Efficient Hydrogen Evolution in Alkaline Media

MoO2 NPs@N-C NSs/NF · Electrode · Three-electrode cell in 1.0 M KOH; SCE reference, carbon rod counter, catalyst loading 0.06 mg cm-2; iR-corrected; 5 mV s-1.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

linear sweep voltammetry and cyclic voltammetry

2020 · Highly Selective CO2 Electroreduction to CH4 by In Situ Generated Cu2O Single-Type Sites on a Conductive MOF: Stabilizing Key Intermediates with Hydrogen Bonding

Cu2O@CuHHTP, -1.2 V 30 min · Electrode · 0.1 M KCl/0.1 M KHCO3 under Ar and CO2; CV -1.4 to 0.1 V vs RHE at 100 mV/s in SI; LSV scan rate 10 mV/s

Electrochemistry ApplicationLinear sweep

LSV comparison

2020 · Highly Selective CO2 Electroreduction to CH4 by In Situ Generated Cu2O Single-Type Sites on a Conductive MOF: Stabilizing Key Intermediates with Hydrogen Bonding

Synthesized Cu2O quantum dots without conductive carbon black electrode · Electrode · CO2-saturated 0.1 M KHCO3/0.1 M KCl electrolyte

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Ligand 1 in CH2Cl2 solution for cyclic voltammetry · Model · CH2Cl2 solution of 1 (5 x 10^-4 mol L^-1), 0.1 M nBu4NPF6, vs Fc/Fc+.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry at different scan rates

2020 · Ionic liquid supported nickel-based metal-organic framework for electrochemical sensing of hydrogen peroxide and electrocatalytic oxidation of methanol

Ni-MOF modified glassy carbon electrode (Ni-MOF/GCE) · Electrode · 0.5 M NaOH; scan rates from 0.01 to 0.5 V s^-1; conventional three-electrode system with Ni-MOF/GCE working electrode, SCE reference and Pt plate counter electrode.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry for H2O2 oxidation response

2020 · Ionic liquid supported nickel-based metal-organic framework for electrochemical sensing of hydrogen peroxide and electrocatalytic oxidation of methanol

Ni-MOF modified glassy carbon electrode (Ni-MOF/GCE) · Electrode · 0.5 M NaOH; 50 mV s^-1; Ni-MOF/GCE with and without H2O2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for methanol oxidation reaction

2020 · Ionic liquid supported nickel-based metal-organic framework for electrochemical sensing of hydrogen peroxide and electrocatalytic oxidation of methanol

Ni-MOF modified glassy carbon electrode (Ni-MOF/GCE) · Electrode · 0.5 M NaOH containing baseline and 0.5, 1.0, 1.5, 2.0, 3.0 and 4.0 M CH3OH; potential range 0-0.6 V; scan rate 50 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

H4Ni(dbg)2 solution sample · Unknown · 1 mM H4Ni(dbg)2 in 0.1 M TBAPF6 degassed DMF; glassy carbon working electrode; Ag pseudo-reference; Pt counter; 100 mV/s

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Metal-organic framework nanosheets for enhanced performance of organic photovoltaic cells

dropcast Zn2(ZnTCPP) MON film · Thin Film · Acetonitrile with tetrabutylammonium perchlorate electrolyte; Ag/Ag+ reference, Pt counter electrode, glassy carbon working electrode; scan rate 100 mV s-1 under Ar.

Electrochemistry ApplicationCyclic voltammetry

Electrochemical double-layer capacitance from CV scan-rate series

2020 · Multimetal Incorporation into 2D Conductive Metal-Organic Framework Nanowires Enabling Excellent Electrocatalytic Oxidation of Benzylamine to Benzonitrile

NiCoFe-CAT/AB/PVDF on carbon cloth working electrode · Electrode · CV in 1 M KOH; potential window 1.12-1.22 V; scan rates 5-85 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2020 · Multimetal Incorporation into 2D Conductive Metal-Organic Framework Nanowires Enabling Excellent Electrocatalytic Oxidation of Benzylamine to Benzonitrile

NiCoFe-CAT/AB/PVDF on carbon cloth working electrode · Electrode · 1.0 M KOH with and without 10 mM BA; scan rate 5 mV s-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for benzylamine electrooxidation

2020 · Multimetal Incorporation into 2D Conductive Metal-Organic Framework Nanowires Enabling Excellent Electrocatalytic Oxidation of Benzylamine to Benzonitrile

NiCoFe-CAT/AB/PVDF on carbon cloth working electrode · Electrode · 1 M KOH + 10 mmol BA on carbon cloth, scan rate 5 mV s-1; potentials vs RHE at i10/i50/i100.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (LSV) for OER/water oxidation

2020 · Multimetal Incorporation into 2D Conductive Metal-Organic Framework Nanowires Enabling Excellent Electrocatalytic Oxidation of Benzylamine to Benzonitrile

NiCoFe-CAT/AB/PVDF on carbon cloth working electrode · Electrode · 1 M KOH on carbon cloth, scan rate 5 mV s-1; potentials vs RHE at i10/i50/i100.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry

2020 · Multiscale optimization of Li-ion diffusion in solid lithium metal batteries: Via ion conductive metal-organic frameworks

Flexible LCMOF-1/PVDF-HFP/Li-IL SE · Thin Film · Li/SE/SS asymmetric cell; scan rate 1 mV s-1; room temperature; open-circuit to 6 V.

Electrochemistry ApplicationCyclic voltammetry

CR2025 lithium half-cell galvanostatic charge/discharge, CV and EIS

2020 · Oxygen-Vacancy-Abundant Ferrites on N-Doped Carbon Nanosheets as High-Performance Li-Ion Battery Anodes

Composite working electrode formulation · Electrode · Li foil counter/reference; 1.0 M LiPF6 in ethyl carbonate/dimethyl carbonate 1:1 v/v; Celgard 2400 separator; active material/carbon black/PVDF electrode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Oxygen-Vacancy-Abundant Ferrites on N-Doped Carbon Nanosheets as High-Performance Li-Ion Battery Anodes

NC@CoFe2O4 powder · Powder · 0.2 mV s-1 between 0.01 and 3.0 V vs Li/Li+.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Oxygen-Vacancy-Abundant Ferrites on N-Doped Carbon Nanosheets as High-Performance Li-Ion Battery Anodes

NC@NiFe2O4 powder · Powder · 0.2 mV s-1 between 0.01 and 3.0 V vs Li/Li+.

Electrochemistry ApplicationCyclic voltammetry

Asymmetric supercapacitor CV and GCD

2020 · Pillared nickel-based metal-organic frameworks as electrode material with high electrochemical performance

(Zn/Ni)2(bdc)2P//AC asymmetric supercapacitor · Electrode · (Zn/Ni)2(bdc)2P positive electrode and AC negative electrode; CV at 30-200 mV s-1; GCD at 0.5-10 A g-1; working window 0-1.5 V.

Electrochemistry ApplicationCyclic voltammetry

ASC supplementary potential-window CV and Nyquist testing

2020 · Pillared nickel-based metal-organic frameworks as electrode material with high electrochemical performance

(Zn/Ni)2(bdc)2P//AC asymmetric supercapacitor · Electrode · Supplementary Fig. S10: CV windows 0-1.0, 0-1.2, 0-1.4 and 0-1.5 V plus ASC Nyquist plot.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2020 · Pillared nickel-based metal-organic frameworks as electrode material with high electrochemical performance

(Zn/Ni)2(bdc)2P composite working electrode · Electrode · CHI 660E workstation; 3 M KOH aqueous electrolyte; Hg/HgO reference and Pt counter electrode; room temperature.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS of activated carbon electrode

2020 · Self-assembled Mo doped Ni-MOF nanosheets based electrode material for high performance battery-supercapacitor hybrid device

Activated carbon negative electrode · Electrode · AC negative electrode tested in 3 M KOH; SI reports same electrode-sheet preparation method as positive electrode.

Electrochemistry ApplicationDifferential pulse

Differential pulse voltammetry

2020 · Semiconducting Supramolecular Organic Frameworks Assembled from a Near-Infrared Fluorescent Macrocyclic Probe and Fullerenes

receptor 2 in solution · Unknown · Ar-saturated CH2Cl2 with 0.1 M NBu4PF6, Ag/Ag+ reference, Pt counter, glassy carbon working electrode; Fc/Fc+ internal standard; scan rate 0.01 V/s.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2020 · Sensitive detection of carcinoembryonic antigen (CEA) by a sandwich-type electrochemical immunosensor using MOF-Ce@HA/Ag-HRP-Ab2 as a nanoprobe

sandwich CEA immunosensor on GCE · Electrode · CV from -0.2 to 0.6 V at 0.1 V s-1 in 5 mM [Fe(CN)6]3-/4- containing 0.1 mol l-1 KCl for Au/GCE, Au/Ab1/GCE, bare GCE, Au/Ab1/BSA/GCE, Au/Ab1/BSA/CEA/GCE and Au/Ab1/BSA/CEA/Ab2/GCE.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and Randles-Sevcik analysis

2020 · Sensitive detection of carcinoembryonic antigen (CEA) by a sandwich-type electrochemical immunosensor using MOF-Ce@HA/Ag-HRP-Ab2 as a nanoprobe

bare GCE control · Electrode · Peak current measured at scan rates 0.05, 0.1, 0.15, 0.2 and 0.25 V s-1 in K3Fe(CN)6 electrolyte; calculated effective working area.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with diquat redox mediator

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoSx-SIM-NDC-SALI/FTO electrode · Electrode · pH 1.2 aqueous H2SO4 with 10 mM DQ2+, 25 mV/s; compared with no RM and 10 mM MV2+

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry control electrodes with methyl viologen

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoOx-SIM-NDC-SALI/FTO electrode · Electrode · pH 1.2 aqueous H2SO4 with 10 mM MV2+, 25 mV/s; controls include MoOx-SIM-NDC-SALI, NDC-SALI, NU-1000 and FTO

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with methyl viologen redox mediator

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoSx-SIM-NDC-SALI/FTO electrode · Electrode · pH 1.2 aqueous H2SO4 with 10 mM MV2+, 25 mV/s; potentials vs RHE

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry with methyl viologen redox mediator

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoSx-SIM without NDC/FTO electrode · Electrode · pH 1.2 aqueous H2SO4 with 10 mM MV2+, 25 mV/s; potentials vs RHE

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry without redox mediator

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoSx-SIM-NDC-SALI/FTO electrode · Electrode · aqueous H2SO4 at pH 1.2, 25 mV/s; three-electrode H-cell, Pt coil counter, Ag/AgCl/KCl reference; potentials reported vs RHE

Electrochemistry ApplicationCyclic voltammetry

solvent/electrolyte kinetic isotope effect by CV

2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction

MoSx-SIM-NDC-SALI/FTO electrode · Electrode · pH 1.2 H2SO4/H2O vs pD 1.2 D2SO4/D2O, 10 mM MV2+, 25 mV/s

Electrochemistry ApplicationCyclic voltammetry

CV of blank current collector

2020 · Solid-solid interface growth of conductive metal-organic framework nanowire arrays and their supercapacitor application

Blank polished Cu foil current collector · Electrode · Blank copper foil scanned from -0.6 V to -0.02 V vs Ag/AgCl at 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode symmetric supercapacitor CV and GCD

2020 · Solid-solid interface growth of conductive metal-organic framework nanowire arrays and their supercapacitor application

Symmetric supercapacitor assembled from two Cu3(HHTP)2 NWA electrodes · Electrode · Two identical Cu3(HHTP)2 NWA electrodes in 1 M KCl; CV/GCD from 0 to 0.8 V; capacitance based on total active material mass.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV and galvanostatic charge-discharge

2020 · Solid-solid interface growth of conductive metal-organic framework nanowire arrays and their supercapacitor application

Cu3(HHTP)2 nanowire arrays in situ grown on Cu foil · Electrode · Cu3(HHTP)2 NWAs on Cu foil used as sole working electrode; Pt counter electrode and Ag/AgCl reference; 1 M KCl aqueous electrolyte; GCD from -0.6 to -0.02 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · H2O2 0-55 mM in N2-saturated 0.1 M PBS, pH 7; scan rate 50 mV s-1

Sensing ApplicationDifferential pulse

Differential pulse voltammetry

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · 0.1 M PBS pH 9.0; pulse amplitude 50 mV, step potential 5 mV, pulse time 25 ms; scan rate 50 mV/s; H2O2 0.001-0.05 mM

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry pH study

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · 10 mM H2O2 in N2-saturated 0.1 M PBS; pH 4-9; scan rate 50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry scan-rate study

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · 5 mM H2O2 in PBS pH 7.0; scan rates 10-100 mV s-1

Sensing ApplicationCyclic voltammetry

Long-term storage stability CV

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · 40 mM H2O2 in stirred 0.1 M PBS pH 9; refrigerated storage up to 14 days

Sensing ApplicationCyclic voltammetry

Recurrent cyclic voltammetry stability

2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor

MIL-101(Fe)@Fe3O4/NGCE sensor · Electrode · PBS with 3 mM H2O2; 20 cycles; scan rate 50 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Cu(NO3)2 and TABTOate aqueous CV solutions · Unknown · Cu(NO3)2 and 1,3,5-triamino-2,4,6-benzenetriolate, 1 mM in 1 M KCl aqueous solution, 50 mV s-1, platinum working electrode, in air.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry using CHI 760E electrochemical workstation

2020 · Temperature effect on the synthesis of two Ni-MOFs with distinct performance in supercapacitor

Ni-MOF-2D working electrode · Electrode · Three-electrode cell, 3 M KOH aqueous electrolyte, Ag/AgCl reference, Pt wire counter; scan rates 1-100 mV s-1; 0-0.5 V window.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry using CHI 760E electrochemical workstation

2020 · Temperature effect on the synthesis of two Ni-MOFs with distinct performance in supercapacitor

Ni-MOF-3D working electrode · Electrode · Three-electrode cell, 3 M KOH aqueous electrolyte, Ag/AgCl reference, Pt wire counter; scan rates 1-100 mV s-1; 0-0.5 V window.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands

1 drop-cast thin film on glassy carbon · Thin Film · Pristine dhMOF 1 thin film drop-cast on glassy carbon, vs Ag/AgCl, 0.1 M Bu4NPF6 in MeCN; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands

1a iodine-treated thin film for CV · Thin Film · Iodine-treated 1a vs Ag/AgCl, 0.1 M Bu4NPF6 in MeCN; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands

Free ExTTFTB ligand · Model · Free ExTTFTB ligand vs Ag/AgCl in 0.1 M Bu4NPF6/DMF; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2020 · Three-dimensional Co/Ni bimetallic organic frameworks for high-efficient catalytic ozonation of atrazine: Mechanism, effect parameters, and degradation pathways analysis

Co/Ni-MOF brown powder · Powder · CHI760E electrochemical workstation; scan range -0.3 to 0.7 V; scan rate 30 mV s-1; 0.1 M Na2SO4.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · CV at 20, 30, 40, 50, and 60 mV s^-1 in a non-Faradaic region; Cdl from slope of deltaJ vs scan rate.

Electrochemistry ApplicationCyclic voltammetry

CV redox behaviour

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · CV curves from 0.924-1.624 V vs RHE at 10 mV s^-1 for FeCo0.6Ni0.4-CAT, FeNi-CAT, Co0.6Ni0.4-CAT, and Ni-CAT.

Electrochemistry ApplicationCyclic voltammetry

Accelerated CV cycling and chronopotentiometry

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · CV durability from 1.124-1.574 V vs RHE at 5 mV s^-1; chronopotentiometry at 10 mA cm^-2 for 30 h.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

LSV/CV/chronopotentiometry/EIS in three-electrode OER cell

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · CHI 660E; GC working electrode, Hg/HgO reference, Pt wire counter; O2-saturated 1.0 M KOH; 0.2 mg cm^-2 catalyst; 20 CV activation cycles before measurements; RHE conversion used.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Co-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Co0.4Ni0.6-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Co0.6Ni0.4-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2 and current density at 1.6 V vs RHE.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Co0.8Ni0.2-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.4Ni0.6-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2 and current density at 1.6 V vs RHE.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.8Ni0.2-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeNi-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Ni-CAT powder/electrode · Electrode · O2-saturated 1.0 M KOH, 5 mV s^-1, iR-corrected; overpotential at 10 mA cm^-2.

Electrochemistry ApplicationLinear sweep

LSV

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

Commercial RuO2 benchmark electrode · Electrode · Commercial RuO2 comparison under same OER conditions.

SpectroscopyCyclic voltammetry

XPS after 1000 CV cycles

2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activity

FeCo0.6Ni0.4-CAT powder/electrode, Fe/(Co+Ni) about 0.32 · Electrode · XPS after accelerated degradation/OER cycling; metal hydroxide/oxyhydroxide assignment.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry paraquat sensing

2020 · Two-Dimensional Conductive Metal-Organic Frameworks Based on Truxene

truxene-Cu cMOF-modified GC electrode · Electrode · DPV pulse amplitude 50 mV, pulse width 200 ms; paraquat concentrations 0.2-10.0 uM for response, linear range 0.2-5 uM.

Electrical TransportLinear sweep

Two-probe linear sweep voltammetry conductivity

2020 · Two-Dimensional Conductive Metal-Organic Frameworks Based on Truxene

pressed truxene-Cu cMOF tablet · Pellet · Voltage 0-1 V between two stainless steel electrodes; scan rate 0.05 V s-1; conductivity calculated as sigma = L/(R*S) from compressed-sample dimensions.

Electrochemistry ApplicationUnspecified subtype

RRDE ORR voltammetry

2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction

Cu-HAB drop-cast GC electrode · Electrode · Disk swept 0.2-1.1 V vs RHE at 10 mV/s; Pt ring held at 1.2 V vs RHE to oxidise H2O2; Cu-HAB prepared by ink drop-casting.

Electrochemistry ApplicationUnspecified subtype

RRDE/RDE ORR voltammetry

2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction

Ni-HAB-H drop-cast GC electrode · Electrode · 0.1 M KOH in water, pH 13, RRDE at 1600 rpm; disk potential swept 0.2-1.1 V vs RHE at 10 mV/s; Pt ring held at 1.2 V vs RHE; O2 current corrected by subtracting N2 current.

Electrochemistry ApplicationUnspecified subtype

RRDE/RDE ORR voltammetry

2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction

Ni-HAB-L drop-cast GC electrode · Electrode · 0.1 M KOH in water, pH 13, RRDE at 1600 rpm; disk potential swept 0.2-1.1 V vs RHE at 10 mV/s; Pt ring held at 1.2 V vs RHE; O2 current corrected by subtracting N2 current.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry of estradiol oxidation

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · 50 uM ED in 0.1 M PBS (pH 7), scan rate 0.1 V s-1; comparison of bare GCE, HPCN-222/GCE, AuNP/GCE, AuSPCN-222 and AuHPCN-222.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry in ferri/ferrocyanide probe

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · 5 mM [Fe(CN)6]3-/[Fe(CN)6]4- containing 0.1 M KCl; scan rate shown in Figure 3a.

Sensing ApplicationDifferential pulse

differential pulse voltammetry (DPV) calibration

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · 0.1 M PBS (pH 7), ED concentrations 0.01-220 uM. SI protocol: 0.37-0.73 V range, 0.004 V step, 0.05 V modulation amplitude, 0.2 s interval.

Sensing ApplicationCyclic voltammetry

pH-dependent CV/oxidation potential study

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · pH varied from 3 to 9; ED oxidation potential and anodic current recorded.

Sensing ApplicationCyclic voltammetry

scan-rate-dependent cyclic voltammetry

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · 0.1 M PBS (pH 7.0) containing 0.05 mM ED; scan rates 10, 25, 50, 75, 100, 150 and 200 mV s-1.

Sensing ApplicationDifferential pulse

ambient-storage DPV stability/robustness

2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol

AuHPCN-222/GCE · Electrode · Sensor kept at ambient temperature for 20 days with daily DPV of 0.05 mM ED (pH 7).

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry.

2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis

HHB-Cu NS organic cathode electrode · Electrode · CV at 1 mV s^-1; optimised potential window 1.3-2.6 V vs Li/Li+.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry comparison.

2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis

HHB-Ni nanosheets · Nanosheet · HHB-Ni NSs compared with HHB-Cu NSs at 1 mV s^-1 for redox-site interpretation.

Electrochemistry ApplicationCyclic voltammetry

CV, galvanostatic charge-discharge, rate and cycling tests.

2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis

bulk HHB-Cu cathode electrode · Electrode · Bulk HHB-Cu cathode measured under same Li-ion coin-cell conditions as HHB-Cu NS electrode.

Electrochemistry ApplicationCyclic voltammetry

CV-derived double-layer capacitance

2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution

Co-HAB-NSs · Nanosheet · CV scan rates from 30 to 80 mV s-1; current density at 1.05 V plotted against scan rate; fitted slope is twice Cdl.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution

Co-HAB-NSs · Nanosheet · 1 M aqueous KOH, three-electrode cell with Ag/AgCl reference and Pt wire counter; catalyst ink on polished glassy carbon RDE, 0.5 mg cm-2 loading; LSV at 5 mV s-1 and 1600 rpm; potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution

Co-HAB-NP · Powder · Morphology-control OER comparison of Co-HAB-NP, Co-HAB-S, Co-HAB-HNs, and bulk Co-HAB under the same electrochemical protocol.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in a three-electrode PFA Swagelok cell

2020 · Understanding the mechanism of high capacitance in nickel hexaaminobenzene-based conductive metal-organic frameworks in aqueous electrolytes

free-standing NiHAB composite electrode · Electrode · Free-standing NiHAB electrode on glassy carbon working electrode; overcapacitive activated carbon counter electrode; leakless Ag/AgCl reference calibrated to Ag/AgCl in 1 M KCl; 1 M aqueous KOH; 1 mV/s; typical potential range -0.75 to -0.25 V vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry with potassium salts of different anions

2020 · Understanding the mechanism of high capacitance in nickel hexaaminobenzene-based conductive metal-organic frameworks in aqueous electrolytes

free-standing NiHAB composite electrode · Electrode · 1 M KOH, 1 M KCHOO, 1 M KBr, and 1 M KF at 1 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in hydroxyl-free organic base electrolytes

2020 · Understanding the mechanism of high capacitance in nickel hexaaminobenzene-based conductive metal-organic frameworks in aqueous electrolytes

free-standing NiHAB composite electrode · Electrode · 1 M lithium isopropoxide in THF and sodium ethoxide in ethanol; 0.2 mV/s; Ag/AgCl wire reference.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in coin cell

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ composite coin-cell cathode · Electrode · Coin cell with Li metal anode and FeTHQ composite cathode; scan rate 10 mV/s.

Electrochemistry ApplicationLinear sweep

OER LSV, Tafel, EIS, Cdl and chrono-stability testing

2019 · 3D self-branched zinc-cobalt Oxide@N-doped carbon hollow nanowall arrays for high-performance asymmetric supercapacitors and oxygen electrocatalysis

3D self-branched ZnCo2O4@NC/CTs · Electrode · Three-electrode OER tests in 1.0 M KOH, pH about 13.8, N2 purged 30 min; Pt wire counter, Ag/AgCl reference, potentials calibrated to RHE.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode supercapacitor CV, galvanostatic charge/discharge and EIS

2019 · 3D self-branched zinc-cobalt Oxide@N-doped carbon hollow nanowall arrays for high-performance asymmetric supercapacitors and oxygen electrocatalysis

3D self-branched ZnCo2O4@NC/CTs · Electrode · ZnCo2O4@NC/CTs, ZnCo2O4/CTs, Co3O4@NC/CTs and CTs tested in KOH aqueous electrolyte with Pt counter and Ag/AgCl reference; potential window 0-0.7 V vs Ag/AgCl for positive electrode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · A Copper Coordination Polymer with Matching Energy Level for Modifying Hole Transport Layers to Improve the Performance of Perovskite Solar Cells

as-prepared Cu-bix pale-yellow crystals · Single Crystal · Gamry electrochemical workstation; Pt working plate, Pt counter, Ag/AgCl reference; 0.1 M Bu4NPF6 in chlorobenzene; 50 mV s-1; Fc/Fc+ internal standard.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

Linear sweep voltammetry (LSV) and cyclic voltammetry (CV)

2019 · A Li+ conductive metal organic framework electrolyte boosts the high-temperature performance of dendrite-free lithium batteries

Optimised ILE@MOF ionogel, 1.5 g ILE per 1.0 g MOF · Thin Film · Li/ILE@MOF/SS cell; LSV at 0.1 mV s-1; CV from -0.5 to 0.5 V vs Li/Li+ at 0.1 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · A semiconducting layered metal-organic framework magnet

as-synthesised K3Fe2[PcFe-O8] dark black powder · Powder · CV in CH3CN with 0.1 M TBAPF6 supporting electrolyte at 298 K, 100 mV/s scan rate, glassy carbon working electrode.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode asymmetric supercapacitor CV, GCD and Ragone analysis

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

AC//Ni-COF asymmetric supercapacitor device · Electrode · AC//Ni-COF device in 3 M KOH; CV at 100 mV s^-1 over voltage windows up to 1.5 V; scan rates 5-30 mV s^-1; GCD current densities 1-10 A g^-1.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and cycling stability in a three-electrode setup

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

Ni0-COF three-electrode working electrode · Electrode · 3 M KOH aqueous electrolyte; CV scan rates 5-30 mV s^-1; GCD current densities 0.5-10 A g^-1; cycling at 1 A g^-1.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD and EIS in a three-electrode setup

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

Ni-COF three-electrode working electrode · Electrode · 3 M KOH aqueous electrolyte; Pt plate counter electrode; Hg/HgO reference electrode; potential range 0-0.6 V vs Hg/HgO; CV scan rates 5-30 mV s^-1; GCD current densities 0.5-10 A g^-1.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD substrate control

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

Ni foam electrochemical substrate control · Electrode · Ni foam evaluated to preclude substrate contribution; compared with Ni-COF at 1 A g^-1.

Electrical TransportCyclic voltammetry

Electrochemical impedance/CV comparison of electrolyte anions

2019 · Anisotropic Redox Conductivity within a Metal-Organic Framework Material

Solvothermal NU-1000 thin film on ZnO-coated FTO · Electrode · Comparison of TBAPF6 and NaBARF electrolyte behaviour; Figure 6 reports 0.1 M acetonitrile solutions at 1.6 V vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Anisotropic Redox Conductivity within a Metal-Organic Framework Material

EPD NU-1000 thin film on ZnO-coated FTO · Electrode · 1 M TBAPF6 in CH2Cl2/DCM; scan rate 100 mV s-1; Ag/AgCl/KCl reference; Pt mesh counter electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Anisotropic Redox Conductivity within a Metal-Organic Framework Material

Solvothermal NU-1000 thin film on ZnO-coated FTO · Electrode · 1 M TBAPF6 in CH2Cl2/DCM; scan rate 100 mV s-1; Ag/AgCl/KCl reference; Pt mesh counter electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Bottom-Up Fabrication of 1D Cu-based Conductive Metal–Organic Framework Nanowires as a High-Rate Anode towards Efficient Lithium Storage

Cu-CAT NW composite anode electrode · Electrode · Half cell vs Li/Li+ from 0.01 to 3.0 V at 0.1 mV s^-1; pseudocapacitive contribution also shown at 0.4 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Symmetric double-layer supercapacitor CV/GCD cycling on Autolab/GPES

2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors

CNF@Ni-HITP symmetric supercapacitor · Electrode · Two identical CNF@Ni-HITP nanopaper electrodes with PVA/KCl gel electrolyte, filter-paper separator, and graphite-paper current collectors; potential windows 0-0.7, 0-1.0, and 0-1.4 V studied.

Electrochemistry ApplicationCyclic voltammetry

Three-electrode CV, GCD, and EIS on Autolab/GPES and CHI 660D-3

2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors

CNF@Ni-HITP nanopaper · Electrode · Aqueous 3 M KCl electrolyte; Ag/AgCl reference; platinum wire counter; freestanding CNF@c-MOF nanopaper on platinum ring as working electrode without binder or conductive additive; EIS 100 kHz to 0.01 Hz, 5 mV amplitude.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2019 · Co 3 O 4 @Cu-Based Conductive Metal–Organic Framework Core–Shell Nanowire Electrocatalysts Enable Efficient Low-Overall-Potential Water Splitting

Co3O4@CuCAT optimal core-shell electrode · Electrode · CV at scan rates 100-200 mV s-1; Cdl used to estimate ECSA.

Electrochemistry ApplicationLinear sweep

HER LSV and Tafel analysis

2019 · Co 3 O 4 @Cu-Based Conductive Metal–Organic Framework Core–Shell Nanowire Electrocatalysts Enable Efficient Low-Overall-Potential Water Splitting

Co3O4@CuCAT optimal core-shell electrode · Electrode · Three-electrode HER in 1 M KOH at room temperature; LSV scan rate 2 mV s-1; potentials -1.0 to -2.0 V vs Ag/AgCl, converted to RHE.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2019 · Co 3 O 4 @Cu-Based Conductive Metal–Organic Framework Core–Shell Nanowire Electrocatalysts Enable Efficient Low-Overall-Potential Water Splitting

Co3O4@CuCAT optimal core-shell electrode · Electrode · Three-electrode OER in 1 M KOH at room temperature; LSV scan rate 2 mV s-1; potentials 0.0 to 1.0 V vs Ag/AgCl, converted to RHE.

Electrochemistry ApplicationLinear sweep

Overall water splitting two-electrode LSV and stability

2019 · Co 3 O 4 @Cu-Based Conductive Metal–Organic Framework Core–Shell Nanowire Electrocatalysts Enable Efficient Low-Overall-Potential Water Splitting

Co3O4@CuCAT optimal core-shell electrode · Electrode · Two-electrode water splitting in 1 M KOH at 2 mV s-1 between 1.0 and 2.0 V; Co3O4@CuCAT used as both cathode and anode; 50 h i-t at 1.57 V.

Electrochemistry ApplicationLinear sweep

HER/OER LSV ratio-series comparison

2019 · Co 3 O 4 @Cu-Based Conductive Metal–Organic Framework Core–Shell Nanowire Electrocatalysts Enable Efficient Low-Overall-Potential Water Splitting

Co3O4@CuCAT-1 · Electrode · HER and OER LSV curves of Co3O4@CuCAT samples with different CuCAT coating ratios.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Conductive 2D metal-organic framework for high-performance cathodes in aqueous rechargeable zinc batteries

Zn-Cu3(HHTP)2 coin cell · Electrode · Coin-type two-electrode Zn-Cu3(HHTP)2 cell in 3.0 M aqueous Zn(CF3SO3)2; scan-rate series for charge-storage analysis.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Conductive metal–organic framework with redox metal center as cathode for high rate performance lithium ion battery

Cu3(HHTP)2 cathode electrode · Electrode · Voltage window 1.7-3.5 V vs Li/Li+; scan rate 0.2 mV s-1; several cycles shown.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry comparison with PP cell

2019 · Conductive MOF-Modified Separator for Mitigating the Shuttle Effect of Lithium-Sulfur Battery through a Filtration Method

CR2025 Li-S cell with Ni3(HITP)2-modified separator · Unknown · CV scans of Li-S cells with PP and Ni3(HITP)2-modified separators at 0.1 mV/s, 1.8-3.0 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Conductive MOF-Modified Separator for Mitigating the Shuttle Effect of Lithium-Sulfur Battery through a Filtration Method

CR2025 Li-S cell with Ni3(HITP)2-modified separator · Unknown · CV at 0.1 mV/s in 1.8-3.0 V; first four cycles for modified separator cell.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Construction of 1D conductive Ni-MOF nanorods with fast Li+ kinetic diffusion and stable high-rate capacities as an anode for lithium ion batteries

Ni-CAT nanorod lithium-ion battery anode electrode · Electrode · 0.01-3.0 V vs Li+/Li at scan rate 0.1 mV s-1; first three cycles shown.

Electrochemistry ApplicationCyclic voltammetry

ECSA-CV / double-layer capacitance slope

2019 · Copper-based conductive metal organic framework in-situ grown on copper foam as a bifunctional electrocatalyst

Cu3HITP2/CF · Electrode · CV curves collected from 0.625-0.825 V vs RHE at 20-120 mV s-1 to compare electrochemical active surface area.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for OER

2019 · Copper-based conductive metal organic framework in-situ grown on copper foam as a bifunctional electrocatalyst

Cu3HITP2/CF · Electrode · Three-electrode CHI 660E; 1.0 mol L-1 KOH; carbon rod counter; Ag/AgCl reference; converted to RHE; 20 CV pre-cycles; LSV 1 mV s-1; 1.2-1.8 V vs RHE; no iR compensation.

Electrochemistry ApplicationLinear sweep

linear sweep voltammetry for ORR

2019 · Copper-based conductive metal organic framework in-situ grown on copper foam as a bifunctional electrocatalyst

Cu3HITP2/CF · Electrode · Three-electrode CHI 660E; 0.1 mol L-1 KOH; O2 bubbled for 20 min before LSV; 20 CV pre-cycles; LSV 1 mV s-1; ORR potential range 1.1-0.4 V vs RHE; no iR compensation.

Electrochemistry ApplicationCyclic voltammetryLinear sweep

CV cycling stability followed by ORR LSV

2019 · Copper-based conductive metal organic framework in-situ grown on copper foam as a bifunctional electrocatalyst

Cu3HITP2/CF · Electrode · ORR LSV compared before and after 2000 CV cycles in alkaline electrolyte.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for double-layer capacitance

2019 · Copper-Metal Organic Frameworks Electrodeposited on Carbon Paper as an Enhanced Cathode for the Hydrogen Evolution Reaction

HKUST-1 ED on carbon paper · Electrode · CV in 0.425-0.625 V vs RHE at different scan rates; current density plotted against scan rate to estimate Cdl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for double-layer capacitance

2019 · Copper-Metal Organic Frameworks Electrodeposited on Carbon Paper as an Enhanced Cathode for the Hydrogen Evolution Reaction

HKUST-1 HT drop-cast electrode · Electrode · CV in 0.425-0.625 V vs RHE at different scan rates; current density plotted against scan rate to estimate Cdl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

[100]-oriented PPF-11 film on TCPP-coated ZnO-FTO · Electrode · PPF-11/ZnO-FTO working electrode; Ag/AgCl reference; Pt-mesh counter; 0.1 M Bu4NPF6/DMF

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Electrocatalytic Hydrogen Evolution from a Cobaloxime-Based Metal-Organic Framework Thin Film

UU-100(Co)|FTO thin-film electrode · Electrode · DMF containing 0.1 M LiClO4; potentials vs Fc+/0; scan rates 10-250 mV/s in related figures.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Electrocatalytic Hydrogen Evolution from a Cobaloxime-Based Metal-Organic Framework Thin Film

UU-100(Co)|GC thin-film electrode · Electrode · DMF electrolyte; UU-100(Co)|GC at several scan rates.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry and Tafel analysis

2019 · Electrocatalytic Hydrogen Evolution from a Cobaloxime-Based Metal-Organic Framework Thin Film

UU-100(Co)|GC thin-film electrode · Electrode · Acetate buffer at pH 4; LSV recorded at 20 mV/s; potentials vs RHE.

Electrochemistry ApplicationCyclic voltammetry

Solution-phase cyclic voltammetry

2019 · Electrocatalytic Hydrogen Evolution from a Cobaloxime-Based Metal-Organic Framework Thin Film

Molecular cobaloxime linker solution · Unknown · Cobaloxime linker in DMF, referenced to Fc+/0; 0.1 M electrolyte; GC disk working electrode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Exposing {001} Crystal Plane on Hexagonal Ni-MOF with Surface-Grown Cross-Linked Mesh-Structures for Electrochemical Energy Storage

Y1-Y5//AC aqueous devices · Electrode · Ni-MOF//AC aqueous devices in 3.0 M KOH; voltage window screening and scan rates 5-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Exposing {001} Crystal Plane on Hexagonal Ni-MOF with Surface-Grown Cross-Linked Mesh-Structures for Electrochemical Energy Storage

Y1-Y5 three-electrode working electrodes · Electrode · Three-electrode cell in 3.0 M KOH; Pt counter; Hg/HgO reference; scan rates 5-100 mV s-1 for Y3 and Y1/Y2/Y4/Y5; potential-window screening at 20 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV and GCD, three-electrode

2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors

Active carbon electrode · Electrode · Active carbon negative electrode tested before HSC fabrication; CV 5-50 mV/s and GCD 1-10 A/g.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and galvanostatic charge-discharge, three-electrode

2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors

Co2-Ni-MOF working electrode · Electrode · 6 M KOH electrolyte; saturated Hg/HgO reference, Pt foil counter, MOF working electrode; CV 5-50 mV/s and GCD 1-10 A/g.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and galvanostatic charge-discharge, three-electrode

2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors

Ni-MOF working electrode · Electrode · 6 M KOH electrolyte; Hg/HgO reference, Pt foil counter, MOF working electrode; comparative CV at 20 mV/s and GCD at 1 A/g.

Electrochemistry ApplicationCyclic voltammetry

CV, GCD, cycling, and Ragone analysis, two-electrode HSC

2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors

Co2-Ni-MOF//AC HSC device · Electrode · Co2-Ni-MOF//AC hybrid supercapacitor; Co2-Ni-MOF positive electrode and active carbon negative electrode; cycling at 1 A/g.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry at varied scan rates

2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction

(U+S)-CoFe-MOF on glassy carbon electrode · Electrode · CV potential window 0.22-0.32 V vs Ag/AgCl; scan rates 10-120 mV s-1; slope of Delta J at 0.27 V used to represent ECSA.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry and Tafel analysis

2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction

(U+S)-CoFe-MOF on glassy carbon electrode · Electrode · O2-saturated 1 M KOH; three-electrode cell; 5 mV s-1 scan rate; potentials converted to RHE and 90% iR compensation.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry

2019 · Highly Conductive Bimetallic Ni-Fe Metal Organic Framework as a Novel Electrocatalyst for Water Oxidation

FeNi-DOBDC-3 · Nanosheet · Three-electrode cell, CHI 750D, Pt coil counter, Ag/AgCl saturated KCl reference, 5 mm RDE working electrode, 1.0 M O2-saturated KOH, 10 mV/s, 95% iR correction. Catalyst ink: 2 mg catalyst + 2 mg carbon black in water/ethanol/isopropanol 3:1:1 with 5 microlitre 5% Nafion; pretreated by about 20 CV scans from 1.0 to 1.8 V vs RHE at 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of ferricyanide redox process

2019 · Highly Electroconductive Metal-Organic Framework: Tunable by Metal Ion Sorption Quantity

Cd(II)-exposed TMU-60/PVDF paste electrode · Electrode · TMU-60-Cd electrode in 10 mM ferricyanide, 1 M KCl; scan rate 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Compound 1 powder/Nafion glassy-carbon electrode · Electrode · CH Instruments 611B; three-electrode system; glassy carbon working electrode, Pt auxiliary, Ag/AgCl reference; 0.1 M [n-Bu4N]PF6/ACN; ferrocene internal standard; N2 purge.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

Synthesised In10 MOF powder · Powder · Ag/AgCl reference electrode, Pt plate working electrode, Pt slice counter electrode, 0.1 M Bu4NPF6 in chlorobenzene, 50 mV/s, Fc/Fc+ internal standard.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of HTM and HTM/In10, SI Figure S5 caption only

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

HTM/In10-4 film · Thin Film · The SI text and rendered page contain the Figure S5 caption for CV curves of HTM and HTM/In10, but the plot body is not visible in the local rendered/text layer.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

BCA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

BCA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

DTA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

DTA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

OBA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

OBA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

PTA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

PTA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

PTCDA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

PTCDA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

TCA-LNMO composite cathode electrode · Electrode · CV between 3.5 and 4.9 V vs Li/Li+; Fig. 8a scan rate 0.05 mV s-1; additional CV scans 0.06, 0.08, 0.10, 0.12 and 0.14 mV s-1 for diffusion analysis.

Electrochemistry ApplicationCyclic voltammetry

CV-derived Li diffusion coefficient using Randles-Sevcik equation

2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

TCA-LNMO composite cathode electrode · Electrode · Calculated from slopes of peak current versus square root of scan rate in Fig. S10; scan rates 0.06-0.14 mV s-1; A = 1.54 cm-1 reported, n = 1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2019 · Mo-Based crystal POMOFs with a high electrochemical capacitor performance

compound 1-based GCE working electrode · Electrode · Three-electrode cell in 1 M H2SO4; Pt counter and Ag/AgCl reference; -0.05 to 0.55 V vs Ag/AgCl; scan rates 5-100 mV s-1 in main figure and 10-200 mV s-1 in SI.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2019 · Mo-Based crystal POMOFs with a high electrochemical capacitor performance

compound 2-based GCE working electrode · Electrode · Three-electrode cell in 1 M H2SO4; Pt counter and Ag/AgCl reference; -0.05 to 0.55 V vs Ag/AgCl; scan rates 5-100 mV s-1 in main figure and 10-200 mV s-1 in SI.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance / ECSA proxy

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

Ni NCs@MIL-53(NiFe), optimised Ni NCs:FeCl2 mass ratio 3 · Powder · CV curves in non-redox potential range; Delta j versus scan rate at 1.07 V vs RHE; slope 2Cdl used to represent ECSA.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (OER polarisation)

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

MIL-53(Fe) · Powder · Same RDE OER conditions as target: 1 M KOH, 1600 rpm, 5 mV s^-1, iR-corrected, catalyst loading 0.2 mg cm^-2.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (OER polarisation)

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

Ni NCs · Powder · Same RDE OER conditions as target: 1 M KOH, 1600 rpm, 5 mV s^-1, iR-corrected, catalyst loading 0.2 mg cm^-2.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry (OER polarisation)

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

Ni NCs@MIL-53(NiFe), optimised Ni NCs:FeCl2 mass ratio 3 · Powder · Three-electrode RDE in 1 M KOH; glassy-carbon RDE working electrode, Pt wire auxiliary, Ag/AgCl reference; 1600 rpm, 5 mV s^-1, iR-corrected, catalyst loading 0.2 mg cm^-2.

Electrochemistry ApplicationLinear sweep

Tafel analysis from LSV curves

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

Ni NCs@MIL-53(NiFe), optimised Ni NCs:FeCl2 mass ratio 3 · Powder · Tafel plots based on eta = b log j + a, extracted from LSV curves for target and controls.

Electrochemistry ApplicationCyclic voltammetry

OER durability by CV cycling and chronoamperometry

2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction

Ni NCs@MIL-53(NiFe), optimised Ni NCs:FeCl2 mass ratio 3 · Powder · LSV before/after 1000 CV cycles in 1 M KOH; chronoamperometry at ascending current densities 5, 10 and 20 mA cm^-2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry glucose oxidation

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

vertical NiCo(1:1)-MOFNs array on nanoporous gold, 4 h growth · Electrode · 0.1 M NaOH without and with 4 mM glucose; scan rate 50 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance / ECSA proxy

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

NiCo-MOFNs on nanoporous gold, 2 h growth · Electrode · 0.1 M NaOH; scan-rate-dependent CV; potential window -0.1 to 0.02 V vs. SCE; scan rates 10-200 mV s^-1 in SI

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance / ECSA proxy

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

vertical NiCo(1:1)-MOFNs array on nanoporous gold, 4 h growth · Electrode · 0.1 M NaOH; scan-rate-dependent CV; potential window -0.1 to 0.02 V vs. SCE; scan rates 10-200 mV s^-1 in SI

Electrochemistry ApplicationCyclic voltammetry

CV double-layer capacitance / ECSA proxy

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

NiCo-MOFNs on nanoporous gold, 6 h growth · Electrode · 0.1 M NaOH; scan-rate-dependent CV; potential window -0.1 to 0.02 V vs. SCE; scan rates 10-200 mV s^-1 in SI

Electrochemistry ApplicationCyclic voltammetry

CV glucose oxidation current versus Co content

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

vertical NiCo(1:1)-MOFNs array on nanoporous gold, 4 h growth · Electrode · Glucose oxidation current calculated by subtracting 0.1 M NaOH oxidation current from glucose solution oxidation current

Electrochemistry ApplicationCyclic voltammetry

scan-rate-dependent CV kinetics

2019 · Nanoporous gold induced vertically standing 2D NiCo bimetal-organic framework nanosheets for non-enzymatic glucose biosensing

vertical NiCo(1:1)-MOFNs array on nanoporous gold, 4 h growth · Electrode · 0.1 M NaOH; scan rates 20-100 mV s^-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Ni-CAT-1 film on FTO for electrochemistry · Electrode · Three-electrode CV cell assembled in argon-filled glove box; MOF/FTO working electrode, Pt wire counter, Ag wire reference; 0.1 M NBu4PF6 in methylene chloride; scan -0.2 to 1.4 V vs ferrocene at 20 mV s^-1; film activated at 120 degC in vacuum before use.

Electrochemistry ApplicationDifferential pulse

differential pulsed voltammetry / energy-level assignment

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Oriented Ni-CAT-1 thin film on gold · Thin Film · Oriented thin Ni-CAT-1 film grown on gold substrate, immersed in 0.1 M NBu4PF6 in dichloromethane; HOMO extracted from differential pulsed voltammetry and LUMO calculated by adding Tauc band gap.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry, LiClO4 electrolyte

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1 bulk powder/crystals · Powder · PMC-1-modified glassy carbon electrode; 0.1 M LiClO4 in CH3CN; scan rate 100 mV/s; Pt counter and Ag quasi-reference; Fc/Fc+ calibration.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry, n-Bu4NPF6 electrolyte

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1 bulk powder/crystals · Powder · PMC-1-modified glassy carbon electrode; 0.1 M n-Bu4NPF6 in CH3CN; scan rate 100 mV/s; Fc/Fc+ calibration.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Compound 2 in DMF solution · Unknown · DMF, 0.1 M [Li][CF3SO3], 0.1 V/s; potentials versus FeCp2+/FeCp2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Compound 2 in DMF solution · Unknown · DMF, 0.1 M [TMA][PF6]; 2 forms a fine suspension; potentials versus FeCp2+/FeCp2.

Electrical TransportLinear sweep

Two-contact electrical conductivity from linear sweep voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

2 precipitated from DMF solution without reductant · Powder · DMF-solution precipitated compound 2 without reductant; pressed pellet/solid clamped between brass electrodes; room temperature; under N2; triplicate separate batches where stated.

Electrical TransportLinear sweep

Two-contact electrical conductivity from linear sweep voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Partially reduced 2 precipitated from DMF solution · Powder · Solution-reduced, Et2O-precipitated compound 2; pressed pellet/solid clamped between brass electrodes; room temperature; under N2; triplicate separate batches where stated.

Electrical TransportLinear sweep

Two-contact electrical conductivity from linear sweep voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

[Fe4S4(SPh)4][TBA]2 precursor control · Powder · [Fe4S4(SPh)4][TBA]2 molecular precursor control; pressed pellet/solid clamped between brass electrodes; room temperature; under N2; triplicate separate batches where stated.

Electrical TransportLinear sweep

Two-contact electrical conductivity from linear sweep voltammetry

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

[Fe4S4(SPh)4][TMA]2 precursor control · Powder · [Fe4S4(SPh)4][TMA]2 molecular precursor control; pressed pellet/solid clamped between brass electrodes; room temperature; under N2; triplicate separate batches where stated.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Triphenylene-Bridged Trinuclear Complexes of Cu: Models for Spin Interactions in Two-Dimensional Electrically Conductive Metal-Organic Frameworks

complex 1 CV solution · Unknown · 0.1 M TBAPF6 in propylene carbonate under N2; glassy carbon working electrode, Pt counter, Ag wire pseudo-reference; 100 mV/s scan rate; potentials vs Fc+/Fc.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2019 · Triphenylene-Bridged Trinuclear Complexes of Cu: Models for Spin Interactions in Two-Dimensional Electrically Conductive Metal-Organic Frameworks

complex 2 CV solution · Unknown · 0.1 M TBAPF6 in propylene carbonate under N2; glassy carbon working electrode, Pt counter, Ag wire pseudo-reference; 100 mV/s scan rate; potentials vs Fc+/Fc.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

bare GCE · Electrode · 0.10 mM dopamine on bare GCE at 100 mV/s; comparator for modified electrode.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · 0.10 mM dopamine in PBS buffer; scan rate 100 mV/s; conventional three-electrode cell with Ag/AgCl reference and Pt wire auxiliary.

Sensing ApplicationCyclic voltammetry

CV pH optimisation

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · 100 uM dopamine in PBS buffer; pH 6.0, 6.1, 6.2, 6.3, 6.4, 6.5, 7.0 and 7.5; scan rate 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

CV scan-speed dependence

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · 0.10 mM dopamine at scan speeds 25, 75, 100, 125, 150, 250 and 500 mV/s.

Sensing ApplicationCyclic voltammetry

Cyclic voltammetry (CV) selectivity test

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · 10 mM ascorbic acid, 0.10 mM dopamine, and blank PBS on Cu3(HHTP)2/GCE at 100 mV/s.

Sensing ApplicationDifferential pulse

Differential pulse voltammetry (DPV)

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · Dopamine concentrations 50 nM, 500 nM, 5 uM, 20 uM, 30 uM, 40 uM, 50 uM, 60 uM, 90 uM, 150 uM and 200 uM on Cu3(HHTP)2/GCE at room temperature.

Sensing ApplicationCyclic voltammetry

Comparator CV against HKUST-1/GCE and ZIF-8/GCE

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

Cu3(HHTP)2/GCE modified electrode · Electrode · 0.10 mM dopamine on Cu3(HHTP)2/GCE, HKUST-1/GCE and ZIF-8/GCE; SI Figure S2.

Sensing ApplicationCyclic voltammetry

Comparator cyclic voltammetry (CV)

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

HKUST-1/GCE · Electrode · 0.10 mM dopamine on HKUST-1/GCE in SI Figure S2.

Sensing ApplicationCyclic voltammetry

Comparator cyclic voltammetry (CV)

2019 · Two-dimensional π-conjugated metal-organic framework with high electrical conductivity for electrochemical sensing

ZIF-8/GCE · Electrode · 0.10 mM dopamine on ZIF-8/GCE in SI Figure S2.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

Cu/C · Powder · 0.1 M KOH O2-saturated; scan rate 5 mV s-1; 1600 rpm; catalyst loading 0.1 mg cm-2.

Electrochemistry ApplicationCyclic voltammetry

CV capacitive measurements

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC (MOF) · Powder · Same electrochemical systems; N2-saturated electrolyte; scan rates 20, 50, 100, 200 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV)

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC (MOF) · Powder · 0.1 M KOH aqueous solution saturated with N2 or O2; glassy carbon working electrode; Pt counter; Ag/AgCl reference; catalyst loading 0.1 mg cm-2.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry and Koutecky-Levich analysis

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC (MOF) · Powder · 0.1 M KOH O2-saturated; scan rate 5 mV s-1; RDE speeds 400-2000 rpm; 1600 rpm comparison curves; catalyst loading 0.1 mg cm-2.

Electrochemistry ApplicationCyclic voltammetry

CV capacitive measurements

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC NPs · Powder · Same electrochemical systems; N2-saturated electrolyte; scan rates 20, 50, 100, 200 mV s-1.

Electrochemistry ApplicationLinear sweep

RDE linear sweep voltammetry

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC NPs · Powder · 0.1 M KOH O2-saturated; 1600 rpm comparison against CuNC (MOF) and 5 wt% Pt/C.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry durability

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-180 · Powder · 3000 CV cycles from 1.4 to 1.8 V at 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-180 · Powder · CV at scan rate 50 mV s-1 comparing Ni-Fe-Se1:1-180 and Ni-Fe-O.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ir/C (20 wt% Ir) · Electrode · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-O · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

NiFe-PBA · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:3-180 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se3:1-180 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-140 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-160 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-200 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationLinear sweep

OER linear sweep voltammetry (LSV)

2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction

Ni-Fe-Se1:1-180 · Powder · O2-saturated 1.0 M KOH; GCE working electrode; RHE reference; carbon rod counter; scan rate 5 mV s-1; IR-drop corrected; catalyst loading 0.42 mg cm-2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Conductive Metal-Organic Frameworks as Ion-to-Electron Transducers in Potentiometric Sensors

M3HHTP2 bulk powder series · Powder · GCE coated with 60 um MOF; scan rate 50 mV/s; 0.1 M KCl; -0.5 to 0.5 V; nitrogen atmosphere.

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge

2018 · Construction of hierarchical nickel cobalt selenide complex hollow spheres for pseudocapacitors with enhanced performance

activated carbon negative electrode · Electrode · Commercial active carbon electrode measured in a three-electrode system; SI Fig. S7 shows CV and GCD curves.

Electrochemistry ApplicationCyclic voltammetry

two-electrode ASC CV, GCD, cycling and Ragone analysis

2018 · Construction of hierarchical nickel cobalt selenide complex hollow spheres for pseudocapacitors with enhanced performance

(Ni0.33Co0.67)Se2 CHSs//AC ASC device · Electrode · (Ni0.33Co0.67)Se2 CHSs positive electrode; activated carbon negative electrode; selected 0-1.6 V device window

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge

2018 · Construction of hierarchical nickel cobalt selenide complex hollow spheres for pseudocapacitors with enhanced performance

NiCo2O4 MHS working electrode · Electrode · Three-electrode cell; 3 M KOH electrolyte; Pt counter electrode; saturated calomel reference; current densities 1-30 A g-1

Electrochemistry ApplicationCyclic voltammetry

CV and galvanostatic charge-discharge

2018 · Construction of hierarchical nickel cobalt selenide complex hollow spheres for pseudocapacitors with enhanced performance

(Ni0.33Co0.67)Se2 CHS working electrode · Electrode · Three-electrode cell; 3 M KOH electrolyte; Pt counter electrode; saturated calomel reference; current densities 1-30 A g-1

Electrochemistry ApplicationCyclic voltammetry

Aqueous cyclic voltammetry

2018 · Development of a UiO-Type Thin Film Electrocatalysis Platform with Redox-Active Linkers

Zr(dcphOH-NDI)@FTO thin film · Thin Film · Zr(dcphOH-NDI)@FTO in H2O with 0.8 M KCl(aq), pH 6.48-6.5; potentials vs NHE; scan-rate-dependent CVs from 5 to 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in DMF

2018 · Development of a UiO-Type Thin Film Electrocatalysis Platform with Redox-Active Linkers

Zr(dcphOH-NDI)@FTO thin film · Thin Film · Zr(dcphOH-NDI)@FTO working electrode in 5 mL DMF with 0.8 M KPF6; 50 mV/s for Table 1, scan-rate studies 5-100 mV/s; nonaqueous Ag/AgNO3 reference vs Fc+/0.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of free linker in DMF

2018 · Development of a UiO-Type Thin Film Electrocatalysis Platform with Redox-Active Linkers

dcphOH-NDI solution control · Model · 1 mM dcphOH-NDI in DMF at glassy carbon disk with 0.1 M n-Bu4NPF6 for Figure S10; Table 1 comparison in 0.8 M KPF6 at 50 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of SAM@FTO

2018 · Development of a UiO-Type Thin Film Electrocatalysis Platform with Redox-Active Linkers

SAM@FTO · Electrode · SAM@FTO in DMF with 0.8 M KPF6 at 0.05 V/s; integrated wave used to calculate adsorbed NDI monolayer surface concentration.

Electrochemistry ApplicationCyclic voltammetry

2032 coin-cell LIB measurements; galvanostatic cycling, CV, EIS

2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework

H-Fe2O3-NSA microrods · Powder · Li metal counter electrode; polypropylene separator; 1 M LiPF6 in FEC/DMC 1:1 v/v; 0.001-3 V; CV at 0.1 mV s-1; electrode diameter 14 mm; mass loading about 1.2 mg cm-2; EIS 0.01 Hz-100 kHz

Electrochemistry ApplicationCyclic voltammetry

2032 coin-cell SIB measurements; galvanostatic cycling, CV, EIS

2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework

H-FeSe2/GC microrods · Powder · Na metal counter electrode; polypropylene separator; 1 M NaClO4 in EC/DMC 1:1 v/v plus 5 wt% FEC; 0.001-3 V; CV at 0.1 mV s-1; electrode diameter 14 mm; mass loading about 1.2 mg cm-2; EIS 0.01 Hz-100 kHz

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework

H-Fe2O3-NSA microrods · Powder · First five cycles, 0.001-3 V vs Li/Li+, scan rate 0.1 mV s-1

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework

H-FeSe2/GC microrods · Powder · First five cycles, 0.001-3 V vs Na/Na+, scan rate 0.1 mV s-1

Electrochemistry ApplicationCyclic voltammetry

Slow-scan cyclic voltammetry

2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework

Fe2(BDP)3 composite working electrode for cyclic voltammetry · Electrode · 0.1 M K(TFSI) in anhydrous propylene carbonate; potassium reference/counter; scan shown at 10 uV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV sweep-rate kinetic analysis

2018 · Encapsulating ionic liquids into POM-based MOFs to improve their conductivity for superior lithium storage

PMo10V2-ILs@HKUST-1 composite electrode · Electrode · PMo10V2-ILs@HKUST-1 capacitive contribution at 1 and 2 mV s^-1, reported in main text with SI figures referenced.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry, CHI 660D electrochemical workstation

2018 · Encapsulating ionic liquids into POM-based MOFs to improve their conductivity for superior lithium storage

PMo10V2-ILs@MIL-100 composite electrode · Electrode · Half-coin cells with Li metal negative electrode, 1 M LiPF6 in EC/DMC (1:1), Celgard 2400; voltage 0.01-3.0 V, scan rate 0.1 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Highly Conducting Neutral Coordination Polymer with Infinite Two-Dimensional Silver-Sulfur Networks

Ag-BHT/Nafion glassy-carbon electrode · Electrode · Glassy carbon working electrode with Ag-BHT/Nafion, Ag+/Ag reference externally calibrated to ferrocene, graphite bar counter, CH660 workstation, 0.1 M Bu4NClO4 in CH2Cl2.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests

spin-coated NiCB@NU-1000 thin film · Thin Film · CV of spin-coated NU-1000, NiCB@NU-1000, Mn-AIM-NU-1000, and Mn-AIM-NiCB@NU-1000 thin films in 0.1 M Na2SO4(aq), measured at 25 mV/s.

SpectroscopyCyclic voltammetry

CV and UV-vis-derived HOMO/LUMO/band-gap estimates

2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests

NiCB@NU-1000 powder · Powder · CV of NiCB and TBAPy solutions converted to NHE by adding 0.21 V; UV-vis absorption used for TBAPy band gap; NU-1000 values from previous electrochemically addressable thin-film and diffuse-reflectance estimates.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry on ITO substrate

2018 · Modular O2 electroreduction activity in triphenylene-based metal-organic frameworks

Trigonal MOF-modified ITO electrodes · Electrode · Co3(HHTP)2 and Ni3(HHTP)2 deposited on ITO; pH 13 and pH 8 under N2 and O2.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry for O2 electroreduction

2018 · Modular O2 electroreduction activity in triphenylene-based metal-organic frameworks

Cu3(HITP)2/Nafion-modified glassy carbon electrode · Electrode · MOF powders deposited on glassy carbon; pH 13 (0.1 M KOH) and pH 8 (0.1 M NaCl), O2 and N2 sparging, 2000 rpm, 5 mV/s unless otherwise noted.

Electrochemistry ApplicationCyclic voltammetry

pH-dependent redox cyclic voltammetry under N2

2018 · Modular O2 electroreduction activity in triphenylene-based metal-organic frameworks

Cu3(HHTP)2/Nafion-modified glassy carbon electrode · Electrode · Unmodified glassy carbon blank followed by MOF-modified electrodes; CV from -1.1 to 0.7 V vs SCE for at least five pH values for redox-active analogues.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry

2018 · Nanopore-induced host-guest charge transfer phenomena in a metal-organic framework

As-prepared Mn-MOF crystals · Single Crystal · Mn-MOF and 2,7-AQDC measured under conditions from prior paper; potentials versus Li+/Li.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2018 · Nanopore-induced host-guest charge transfer phenomena in a metal-organic framework

Free 2,7-AQDC, TTF and TMPDA in DMF electrolyte · Unknown · Saturated DMF solution with 1.0 mol/L [Bu4N]PF6 electrolyte; potentials versus Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

HS-CuO/C NDs electrode · Electrode · CV in non-Faradaic region 1.185-1.315 V vs RHE in 1.0 M KOH at scan rates 1, 2, 5, 10, 15, and 20 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry double-layer capacitance

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

PS-CuO/C NDs electrode · Electrode · CV in non-Faradaic region 1.185-1.315 V vs RHE in 1.0 M KOH at scan rates 1, 2, 5, 10, 15, and 20 mV s-1.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

annealed NDs electrode · Electrode · OER in 1.0 M KOH at 5 mV s-1; three-electrode system at room temperature, potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

as-prepared Cu2O-Cu NDs electrode · Electrode · OER in 1.0 M KOH at 5 mV s-1; three-electrode system at room temperature, potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

HS-CuO/C NDs electrode · Electrode · OER in 1.0 M KOH at 5 mV s-1; three-electrode system at room temperature, potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

PS-CuO NDs electrode · Electrode · OER in 1.0 M KOH at 5 mV s-1; three-electrode system at room temperature, potentials converted to RHE.

Electrochemistry ApplicationLinear sweep

LSV and Tafel analysis

2018 · Nanostructured CuO/C Hollow Shell@3D Copper Dendrites as a Highly Efficient Electrocatalyst for Oxygen Evolution Reaction

PS-CuO/C NDs electrode · Electrode · OER in 1.0 M KOH at 5 mV s-1; three-electrode system at room temperature, potentials converted to RHE.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of drop-cast polymer film

2018 · Polyethenetetrathiolate or polytetrathiooxalate? Improved synthesis, a comparative analysis of a prominent thermoelectric polymer and implications to the charge transport mechanism

P1 poly[Kx(Ni-ett)] · Pellet · CH3CN, 0.1 M tetrabutylammonium hexafluorophosphate, N2, 50 mV s^-1, Fc/Fc+ referenced to 0.00 V.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of drop-cast polymer film

2018 · Polyethenetetrathiolate or polytetrathiooxalate? Improved synthesis, a comparative analysis of a prominent thermoelectric polymer and implications to the charge transport mechanism

P3 poly[Ni-tto] · Pellet · CH3CN, 0.1 M tetrabutylammonium hexafluorophosphate, N2, 50 mV s^-1, Fc/Fc+ referenced to 0.00 V.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry of ligand controls

2018 · Probing charge transfer characteristics in a donor-acceptor metal-organic framework by Raman spectroelectrochemistry and pressure-dependence studies

solid DPNI · Powder · DPNI solid-state and H4TTFTC solution-state (0.03 mM) in 0.2 M LiClO4/ethylene glycol; potentials vs Fc0/+.

Electrochemistry ApplicationCyclic voltammetry

solid-state cyclic voltammetry

2018 · Probing charge transfer characteristics in a donor-acceptor metal-organic framework by Raman spectroelectrochemistry and pressure-dependence studies

solid-state [(Zn(DMF))2(TTFTC)(DPNI)] CV electrode · Electrode · 0.2 M LiClO4/ethylene glycol; scan rates 50, 100 and 200 mV s^-1; potentials vs Fc0/+; powder confined on electrode.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV scan-rate series

2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts

2D-MCo3O4-NCNAs-15-900 · Nanosheet · CV curves of 2D-MCo3O4-NCNAs; capacitive current measured at 1.21 V vs RHE as a function of scan rate.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV scan-rate series

2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts

commercial IrO2 OER reference electrode · Electrode · CV curves and capacitive current measured at 1.21 V vs RHE as a function of scan rate for IrO2.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts

2D-MCo3O4-NCNAs-15-900 · Nanosheet · 1 M KOH, scan rate 10 mV s-1, glassy carbon electrode 3 mm; Pt wire counter, saturated Ag/AgCl reference; values converted to RHE without iR correction.

Electrochemistry ApplicationLinear sweep

ORR LSV using rotating ring-disk electrode

2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts

2D-MCo3O4-NCNAs-15-900 · Nanosheet · O2-saturated 0.1 M KOH, scan rate 10 mV s-1; GC RRDE 5.5 mm working electrode, Pt wire counter, saturated Ag/AgCl reference; values converted to RHE without iR correction.

Electrochemistry ApplicationLinear sweep

Three-electrode LSV and online GC product analysis

2018 · Selective reduction of CO2 by conductive MOF nanosheets as an efficient co-catalyst under visible light illumination

Ni3(HITP)2/carbon black/Nafion carbon-paper electrode · Electrode · H-cell separated by Nafion 117; Ag/AgCl reference; graphite counter electrode; CO2-saturated 0.5 M KHCO3; scan rate 1 mV/s; products analysed by Agilent 7890B GC-TCD/FID.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and b-value/capacitive contribution analysis

2018 · Stabilization of Hexaaminobenzene in a 2D Conductive Metal-Organic Framework for High Power Sodium Storage

Standard Co-HAB-D sodium half-cell electrode · Electrode · CV in Na half-cells at sweep rates from 0.375 to 3 mV s^-1; b-values determined from cathodic peak current versus sweep rate; capacitive contribution evaluated at 0.375 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2018 · Synthesis and Electric Properties of a Two-Dimensional Metal-Organic Framework Based on Phthalocyanine

Cu-CuPc/carbon black/PTFE cathode on stainless mesh · Electrode · 2.0-4.4 V vs Li/Li+; scan rate 1 mV s-1; Li foil counter electrode; 1 M LiPF6 in EC/DMC (1:2)

Electrochemistry ApplicationCyclic voltammetryLinear sweep

ORR CV, RDE linear sweep voltammetry, Koutecky-Levich analysis

2017 · 2D MOF nanoflake-assembled spherical microstructures for enhanced supercapacitor and electrocatalysis performances

Ni/Co-MOF nanoflake RDE catalyst electrode · Electrode · 0.1 M KOH; O2- or Ar-saturated; CV sweep 50 mV s-1; RDE scan 10 mV s-1 at 400-2500 rpm; comparison at 1600 rpm.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry and galvanostatic charge-discharge

2017 · 2D MOF nanoflake-assembled spherical microstructures for enhanced supercapacitor and electrocatalysis performances

Ni/Co-MOF nanoflake glassy-carbon supercapacitor electrode · Electrode · Three-electrode supercapacitor in 1 M LiOH; Pt wire auxiliary, Ag/AgCl reference; CV 0-0.5 V at 5-200 mV s-1; GCD 0-0.5 V at 0.5-10 A g-1.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2017 · Carbon-incorporated Janus-type Ni2P/Ni hollow spheres for high performance hybrid supercapacitors

NP-150 working electrode · Electrode · CV of NP-150 electrode in 2 M KOH at scan rates 2-20 mV s-1; comparison CVs of NP-50/NP-150/NP-250/NP-350 at 10 mV s-1 in SI Fig. S5a.

Electrochemistry ApplicationCyclic voltammetry

two-electrode HSC CV/GCD/Ragone/cycling

2017 · Carbon-incorporated Janus-type Ni2P/Ni hollow spheres for high performance hybrid supercapacitors

NP-150//AC HSC device · Electrode · NP-150 positive electrode and active carbon negative electrode in 2.0 M KOH; CV voltage windows 0.8-1.8 V and GCD/device capacitance, energy density and cycling measured.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode

NMOF-1 bulk nanosheets/powder · Nanosheet · NMOF-1 on glassy carbon electrode in anhydrous acetonitrile with TBAP; 50 mV/s scan rate; Ag/Ag+ nonaqueous reference

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

Blank carbon fibre paper electrode · Electrode · Blank carbon paper in three-electrode 3 M KCl cell; -0.4 to +0.4 V vs Ag/AgCl at 100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode solid-state cyclic voltammetry

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

Symmetric solid-state supercapacitor with Cu-CAT NWA electrodes · Electrode · Symmetric Cu-CAT NWA device with PVA/KCl gel; scan rates 5, 10, 20, 50 and 100 mV s-1; about 0-0.8 V window.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

Cu-CAT nanowire arrays on carbon fibre paper · Electrode · Cu-CAT NWA electrode in three-electrode 3 M KCl aqueous cell; scan rates 10, 20, 50, 100, 200 and 500 mV s-1 in Figure 3a.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP polyhedron control · Powder · 0.5 M H2SO4; CoP polyhedron control; no iR compensation.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP/C · Electrode · 0.5 M H2SO4; CoP plus 10 wt% carbon black; no iR compensation.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC · Powder · 0.5 M H2SO4; three-electrode cell; GCE working electrode; sweep rate 5 mV s-1; no iR compensation; catalyst loading 0.35 mg cm-2.

Electrochemistry ApplicationLinear sweep

HER linear sweep voltammetry and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC/C · Electrode · 0.5 M H2SO4; CoP@PNC plus 10 wt% carbon black; same GCE loading; no iR compensation.

Electrochemistry ApplicationLinear sweep

HER LSV, Tafel, and EIS

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP polyhedron control · Powder · 1 M KOH; CoP control; no iR compensation.

Electrochemistry ApplicationLinear sweep

HER LSV, Tafel, and EIS

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP/C · Electrode · 1 M KOH; CoP plus 10 wt% carbon black; no iR compensation.

Electrochemistry ApplicationLinear sweep

HER LSV, Tafel, EIS, and chronopotentiometry

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC · Powder · 1 M KOH; three-electrode cell; no iR compensation; EIS at -100 mV vs RHE from 100 kHz to 0.01 Hz.

Electrochemistry ApplicationLinear sweep

HER LSV, Tafel, EIS, and chronopotentiometry

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC/C · Electrode · 1 M KOH; CoP@PNC plus 10 wt% carbon black; no iR compensation.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP polyhedron control · Powder · 1 M KOH; CoP control; no iR compensation.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP/C · Electrode · 1 M KOH; CoP plus 10 wt% carbon black; no iR compensation.

Electrochemistry ApplicationLinear sweep

OER LSV, Tafel, EIS, and chronopotentiometry

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC · Powder · 1 M KOH; three-electrode cell; no iR compensation; EIS at 1.53 V vs RHE from 100 kHz to 0.01 Hz.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC/C · Electrode · 1 M KOH; CoP@PNC plus 10 wt% carbon black; no iR compensation.

Electrochemistry ApplicationLinear sweep

OER LSV and Tafel analysis

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

Commercial IrO2 electrode · Electrode · 1 M KOH; commercial IrO2 benchmark; no iR compensation.

Electrochemistry ApplicationLinear sweep

Overall water splitting LSV and chronopotentiometry

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC//CoP@PNC two-electrode electrolyser · Electrode · Two-electrode cell in 1 M KOH; CoP@PNC used as both anode and cathode on nickel foam; loading 2 mg cm-2.

Electrochemistry ApplicationLinear sweep

Overall water splitting LSV

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

Pt/C//IrO2 two-electrode benchmark · Electrode · Two-electrode benchmark Pt/C//IrO2 system in 1 M KOH.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry photocurrent

2017 · Efficient hydrogen production from MIL-53(Fe) catalyst-modified Mo: BiVO4 photoelectrodes

nanoporous BiVO4 photoanode · Electrode · Three-electrode cell, 0.2 M Na2SO4, Pt counter, SCE reference, AM 1.5G 100 mW cm-2 back-side illumination, scan 10 mV s-1, 0-1.6 V vs RHE.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry photocurrent

2017 · Efficient hydrogen production from MIL-53(Fe) catalyst-modified Mo: BiVO4 photoelectrodes

FMBV-2 / 2% Mo:BiVO4-MIL-53(Fe) · Electrode · Three-electrode cell, 0.2 M Na2SO4, Pt counter, SCE reference, AM 1.5G 100 mW cm-2 back-side illumination, scan 10 mV s-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry photocurrent

2017 · Efficient hydrogen production from MIL-53(Fe) catalyst-modified Mo: BiVO4 photoelectrodes

pure MIL-53(Fe) photoanode · Electrode · Pure MIL-53(Fe) photoanode under dark and light conditions; exact electrolyte not restated in SI figure, likely PEC conditions from main text.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry photocurrent

2017 · Efficient hydrogen production from MIL-53(Fe) catalyst-modified Mo: BiVO4 photoelectrodes

2% Mo:BiVO4 photoanode · Electrode · Three-electrode cell, 0.2 M Na2SO4, Pt counter, SCE reference, AM 1.5G 100 mW cm-2 back-side illumination, scan 10 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Solid-state cyclic voltammetry with cavity microelectrode

2017 · Electrical semiconduction modulated by light in a cobalt and naphthalene diimide metal-organic framework

MOF-CoNDI-py-2 purple leaf-like crystals/powder · Single Crystal · MeCN, 0.1 mol dm^-3 [N(n-Bu)4](PF6), Ag/AgNO3 reference (1e-2 mol dm^-3 in MeCN), 50 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of NDI-py in DMF with glassy carbon working electrode

2017 · Electrical semiconduction modulated by light in a cobalt and naphthalene diimide metal-organic framework

NDI-py ligand · Powder · 0.1 mmol dm^-3 NDI-py in 10 mmol dm^-3 [N(n-Bu)4](PF6) DMF; ferrocene internal reference; 25 mV s^-1 method text says 1 mmol dm^-3 solution, SI figure says 0.1 mmol dm^-3.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), asymmetric full cell

2017 · Fabrication of Hierarchical Porous Metal-Organic Framework Electrode for Aqueous Asymmetric Supercapacitor

PC//HP-UiO-66 ASC · Electrode · PC//HP-UiO-66 ASC in 6 M KOH; potential window optimisation and scan-rate testing.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode system

2017 · Fabrication of Hierarchical Porous Metal-Organic Framework Electrode for Aqueous Asymmetric Supercapacitor

HP-UiO-66 working electrode · Electrode · 6 M KOH aqueous electrolyte, 20 C; Hg/HgO reference, Pt counter electrode; scan rates 5-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry (CV), three-electrode system

2017 · Fabrication of Hierarchical Porous Metal-Organic Framework Electrode for Aqueous Asymmetric Supercapacitor

Bare UiO-66 working electrode · Electrode · 6 M KOH aqueous electrolyte, 20 C; Hg/HgO reference, Pt counter electrode; scan rates 5-100 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · From zinc-cyanide hybrid coordination polymers to hierarchical yolk-shell structures for high-performance and ultra-stable lithium-ion batteries

YC-ZnO electrode · Electrode · CR2032 cell, Li counter electrode, 1 M LiPF6 in EC/DEC; 0.001-3.0 V; initial 5 cycles at 0.1 mV s-1 and variable scan rates 0.1-2.0 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · From zinc-cyanide hybrid coordination polymers to hierarchical yolk-shell structures for high-performance and ultra-stable lithium-ion batteries

ZnO control electrode · Electrode · Control ZnO CV in 0.001-3.0 V range; detailed curves are in rendered SI Fig. S3.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation

DSNDI ligand reference · Unknown · First reduction of DSNDI ligand, 1 mM in 0.1 M Bu4NPF6/DMF, vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2017 · Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation

TTF guest reference · Unknown · First oxidation of TTF guest, 1 mM in 0.1 M Bu4NPF6/DMF, vs Ag/AgCl.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry for ORR control

2017 · Mechanistic Evidence for Ligand-Centered Electrocatalytic Oxygen Reduction with the Conductive MOF Ni3(hexaiminotriphenylene)2

Ni(ISQ)2 dropcast on glassy carbon and ITO · Electrode · 0.1 M KOH; SCE reference; Pt counter; N2 and O2 atmospheres; dropcast Ni(ISQ)2 on glassy carbon and ITO; electrodes not rotated

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry for ORR

2017 · Mechanistic Evidence for Ligand-Centered Electrocatalytic Oxygen Reduction with the Conductive MOF Ni3(hexaiminotriphenylene)2

Ni3(HITP)2 film on glassy carbon working electrode · Electrode · O2 atmosphere; pH 13, pH 8 and pH 4 electrolytes; potentials referenced to RHE

Electrochemistry ApplicationCyclic voltammetry

pH-dependent cyclic voltammetry / Pourbaix analysis

2017 · Mechanistic Evidence for Ligand-Centered Electrocatalytic Oxygen Reduction with the Conductive MOF Ni3(hexaiminotriphenylene)2

Ni3(HITP)2 film on glassy carbon working electrode · Electrode · CV under N2 over E = -1.1 to 0.7 V vs SCE at pH 13.6, 12.5, 11.8, 11.2, 10.6, 9.4 and 8.9

Electrochemistry ApplicationCyclic voltammetry

Two-electrode HSC CV/GCD/Ragone/cycling

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

CNC-HSC · Electrode · Co/Ni-MOF positive electrode and CNTs-COOH negative electrode in 3 M KOH.

Electrochemistry ApplicationCyclic voltammetry

CV/GCD/EIS of CNTs-COOH

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

CNTs-COOH negative electrode · Electrode · CNTs-COOH charge-discharge from 1 to 10 A g-1; CV 5-80 mV s-1; Nyquist plot.

Electrochemistry ApplicationCyclic voltammetry

CV

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

Co/Ni-MOF working electrode on Ni foam · Electrode · Three-electrode cell, 3 M KOH, room temperature; scan rates 5-80 mV s-1.

Electrochemistry ApplicationCyclic voltammetry

CV

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

Ni-MOF working electrode on Ni foam · Electrode · Three-electrode cell, 3 M KOH, room temperature; scan rate 5 mV s-1 for Fig. 4a; additional scan rates in Fig. S3.

Electrochemistry ApplicationCyclic voltammetry

CV

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

Zn/Ni-MOF working electrode on Ni foam · Electrode · Three-electrode cell, 3 M KOH, room temperature; scan rates in Fig. S3.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode HSC CV/GCD/Ragone/cycling

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

NC-HSC · Electrode · Ni-MOF positive electrode and CNTs-COOH negative electrode in 3 M KOH.

Electrochemistry ApplicationCyclic voltammetry

Two-electrode HSC CV/GCD/Ragone/cycling

2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors

ZNC-HSC · Electrode · Zn/Ni-MOF positive electrode and CNTs-COOH negative electrode in 3 M KOH.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry-derived energy levels

2017 · Novel Solid-State Solar Cell Based on Hole-Conducting MOF-Sensitizer Demonstrating Power Conversion Efficiency of 2.1%

Co-DAPV film on ITO electrode · Electrode · Cyclic voltammogram of Co-DAPV film on ITO in 0.1 M tetra-n-butylammonium tetrafluoroborate in acetonitrile; Pt counter electrode, Ag/AgCl (3 M KCl) reference, 5 mV s-1 scan speed.

Electrochemistry ApplicationCyclic voltammetry

Double-layer capacitance from CV

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · CVs at 2-10 mV s-1 in 0.86-0.97 V vs RHE; slope of current density vs scan rate.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for HER

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · 0.1 M KOH; HER polarisation to negative potentials; compared NiFe-MOF, Ni-MOF, bulk NiFe-MOF and calcined NiFe-MOF.

Electrochemistry ApplicationLinear sweep

HER chronoamperometry and before/after LSV

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · Chronoamperometry at -0.2 V vs RHE for 2000 s in 0.1 M KOH; before/after LSV comparison.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry for OER

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · 0.1 M KOH, three-electrode, scan rate 10 mV s-1, no iR correction; compared against Ni-MOF, Fe-MOF, bare NF, bulk NiFe-MOF, calcined NiFe-MOF, NiFe-MOF/GC and IrO2.

Electrochemistry ApplicationCyclic voltammetry

Chronoamperometry/CV/EIS OER durability

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · Chronoamperometry at 1.42 V vs RHE for 20000 s; CV 1000 cycles and EIS before/after cycling.

Electrochemistry ApplicationLinear sweep

Two-electrode full water-splitting LSV

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

Two-electrode cell using two NiFe-MOF electrodes · Electrode · Two NiFe-MOF electrodes as anode and cathode; 0.1 M KOH; scan rate 10 mV s-1; compared Pt/C cathode + IrO2 anode.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2017 · Zinc terephthalates ZnC8H4O4 as anodes for lithium ion batteries

amorphous ZnTPA Li-ion half-cell electrode · Electrode · First several cycles at 0.1 mV s-1 in 0.2-3.0 V vs Li+/Li; 2032 Li half-cell.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2017 · Zinc terephthalates ZnC8H4O4 as anodes for lithium ion batteries

crystalline ZnTPA Li-ion half-cell electrode · Electrode · First several cycles at 0.1 mV s-1 in 0.2-3.0 V vs Li+/Li; 2032 Li half-cell.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2017 · Zinc terephthalates ZnC8H4O4 as anodes for lithium ion batteries

ZnTPA.2H2O Li-ion half-cell electrode · Electrode · First several cycles at 0.1 mV s-1 in 0.2-3.0 V vs Li+/Li; 2032 Li half-cell.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry on modified ITO

2016 · Electrochemical oxygen reduction catalysed by Ni3 (hexaiminotriphenylene)2

Ni3(HITP)2 thin film on indium tin oxide electrode · Electrode · Ni3(HITP)2-modified and blank ITO under N2 and O2 atmosphere.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2016 · Facile formation of a nanostructured NiP2@C material for advanced lithium-ion battery anode using adsorption property of metal-organic framework

NiP2@C composite working electrode · Electrode · 0.01-2.5 V vs Li+/Li at scan rate 0.1 mV s^-1

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry HER polarisation

2016 · Hollow Cobalt-Based Bimetallic Sulfide Polyhedra for Efficient All-pH-Value Electrochemical and Photocatalytic Hydrogen Evolution

hollow Zn0.30Co2.70S4 · Powder · 0.5 M H2SO4, pH 0; three-electrode setup; graphite counter, SCE reference calibrated to RHE; scan rate 5 mV s-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry HER polarisation

2016 · Hollow Cobalt-Based Bimetallic Sulfide Polyhedra for Efficient All-pH-Value Electrochemical and Photocatalytic Hydrogen Evolution

hollow Zn0.30Co2.70S4 · Powder · 1 M KOH, pH 14, scan rate 5 mV s-1.

Electrochemistry ApplicationLinear sweep

Linear sweep voltammetry HER polarisation

2016 · Hollow Cobalt-Based Bimetallic Sulfide Polyhedra for Efficient All-pH-Value Electrochemical and Photocatalytic Hydrogen Evolution

hollow Zn0.30Co2.70S4 · Powder · 0.1 M phosphate buffer, pH 7, scan rate 5 mV s-1.

Sensing ApplicationCyclic voltammetry

cyclic voltammetry for H2O2 oxidation

2016 · In-situ Growth of Ultrathin ZIF-67 Nanosheets on Conductive Ti@TiO2/CdS Substrate for High-efficient Electrochemical Catalysis

Ti@TiO2/CdS/ZIF-67 electrode · Electrode · 0.5 M NaOH with H2O2 from 0 to 5 mM; scan rate 10 mV s^-1.

Electrochemistry ApplicationLinear sweep

steady-state polarisation / LSV for OER

2016 · In-situ Growth of Ultrathin ZIF-67 Nanosheets on Conductive Ti@TiO2/CdS Substrate for High-efficient Electrochemical Catalysis

Ti@TiO2/CdS/Co(OH)2 electrode · Electrode · 1 M NaOH, room temperature, scan rate 10 mV s^-1.

Electrochemistry ApplicationLinear sweep

steady-state polarisation / LSV for OER

2016 · In-situ Growth of Ultrathin ZIF-67 Nanosheets on Conductive Ti@TiO2/CdS Substrate for High-efficient Electrochemical Catalysis

Ti@TiO2/CdS/ZIF-67 electrode · Electrode · 1 M NaOH, room temperature, scan rate 10 mV s^-1; three-electrode cell with Hg/HgO reference and Pt counter.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Cd2+-exchanged cleaned HKUST-1 MOFs · Powder · Typical DPV signal for MOFs before and after ion exchange reaction of Cd2+; axis around -1.0 to -0.6 V vs SCE.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Cd-MOF-74 DPV signal-probe sample · Powder · Typical DPV signal for cadmium-based MOFs (Cd-MOF-74).

Sensing ApplicationDifferential pulse

DPV calibration for CRP

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · Electrochemical response to a series of CRP target concentrations under optimised conditions.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · CV of Au/Cu(II)-HKUST-1 labelled anti-CRP/CRP/anti-CRP/Pt-COF/GCE at scan rates from 40 to 180 mV/s.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · DPV in pH 4.5 HAc/NaAc, scan 0.3 to -0.3 V, pulse amplitude 25 mV, pulse frequency 15 Hz, quiet time 2 s; CRP response recorded at -0.02 V.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

cleaned HKUST-1 MOFs · Powder · Typical DPV signal of cleaned MOFs; axis spans -0.6 to 0.4 V vs SCE and 0 to -100 uA.

Sensing ApplicationDifferential pulse

DPV optimisation

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · Optimised pH, anti-CRP concentration, anti-CRP incubation time, and CRP incubation time based on immunosensor response.

Sensing ApplicationCyclic voltammetry

replicate precision, CV cycling stability, storage stability, regeneration test

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · Five replicate measurements at 20 ng/mL CRP; 100 successive CV scans; storage in pH 7.4 PBS at 4 C for 1 week; urea soaking for regeneration.

Electrical TransportCyclic voltammetry

cyclic voltammetry redox-probe comparison

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Pt-COFs modified glassy carbon electrode · Electrode · GC electrode and Pt-COFs-modified electrode in 10 mM PBS (pH 7.4) containing 0.1 M KCl and 5 mM K3[Fe(CN)6]/K4[Fe(CN)6].

Sensing ApplicationDifferential pulse

DPV selectivity test

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

Au-MOFs-Ab2-CRP/anti-CRP/Pt-COFs/GCE immunosensor · Electrode · Response to CRP at 100 ng/mL compared with CEA, HCG, Gly, and Glu interferents at 1 ug/mL.

Electrochemistry ApplicationDifferential pulse

differential pulse voltammetry

2016 · Metal-organic framework nanomaterials as novel signal probes for electron transfer mediated ultrasensitive electrochemical immunoassay

ZIF-8 DPV signal-probe sample · Powder · Typical DPV signal for zinc-based MOFs (ZIF-8).

Electrochemistry ApplicationCyclic voltammetry

BMOF/ZnO-FTO film CV

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

BMOF/ZnO-FTO electrochemical film · Electrode · BMOF/ZnO-FTO working electrode; Pt mesh counter; Ag/AgCl reference; 0.1 M Bu4NPF6 supporting electrolyte.

Electrochemistry ApplicationCyclic voltammetry

BPDPNDI ligand CV

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

BPDPNDI ligand solution · Model · 1 mM BPDPNDI in 0.1 M Bu4NPF6/MeCN.

Electrochemistry ApplicationCyclic voltammetry

DFDNB CV

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

DFDNB solution · Model · 1 mM DFDNB in 0.1 M Bu4NPF6/MeCN.

Electrochemistry ApplicationCyclic voltammetry

DNT CV

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

DNT solution · Model · 1 mM DNT in 0.1 M Bu4NPF6/MeCN.

Electrochemistry ApplicationCyclic voltammetry

MV2+ CV

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

MV2+·2PF6- solution · Model · 0.5 mM MV2+·2PF6- in 0.1 M Bu4NPF6/MeCN.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry stability

2016 · Novel CoS2 embedded carbon nanocages by direct sulfurizing metal-organic frameworks for dye-sensitized solar cells

CoS2_4 h CE · Electrode · Three-electrode CV in acetonitrile containing 100 mM LiClO4, 10 mM LiI and 1 mM I2; 50 mV s-1 for 30 cycles

Electrochemistry ApplicationLinear sweep

Tafel polarisation / LSV

2016 · Novel CoS2 embedded carbon nanocages by direct sulfurizing metal-organic frameworks for dye-sensitized solar cells

CoS2_4 h CE · Electrode · CE symmetric cells; potential range 1 V to -1 V; diffusion limiting current density Jlim compared

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry and optical band-gap estimation

2015 · Charge Transfer-Induced Molecular Hole Doping into Thin Film of Metal-Organic Frameworks

Iodine-doped Co3(NDC)3 LbL film on ITO · Thin Film · CV of LbL and DB Co3(NDC)3 films on ITO under Ar in 0.1 M tetra-n-butylammonium tetrafluoroborate/acetonitrile; HOMO from oxidation onset and LUMO from HOMO plus band gap.

Electrochemistry ApplicationCyclic voltammetry

Slow-scan cyclic voltammetry

2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework

Composite electrochemical electrode containing 1 · Electrode · Lithium reference and counter electrodes; 0.1 M LiBF4 in propylene carbonate; scan rate 30 microV/s; argon-filled glovebox.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2015 · Photoinduced Charge-Carrier Generation in Epitaxial MOF Thin Films: High Efficiency as a Result of an Indirect Electronic Band Gap?

Bare FTO substrate · Electrode · Bare FTO substrate with and without 530 nm illumination; used to show light does not strongly alter FTO current.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry in three-electrode cell

2014 · Bulk protonic conductivity in a cephalopod structural protein

Reflectin thin film on gold working electrode · Electrode · Reflectin-coated gold working electrode, Pt auxiliary, Ag/AgCl reference, 10X phosphate buffered saline, argon purged; scan rate 100 mV s^-1.

Electrochemistry ApplicationCyclic voltammetry

CCl4 reduction electrocatalysis by CV and UV-vis spectroelectrochemistry

2014 · Solvothermal preparation of an electrocatalytic metalloporphyrin MOF thin film and its redox hopping charge-transfer mechanism

CoPIZA/FTO thin film electrode · Electrode · CoPIZA/FTO in 0.1 M LiClO4/DMF; CV before/after CCl4 addition at 100 mV/s; film first reduced to (CoI TCPP)CoPIZA, then CCl4 injected and spectral changes monitored.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry (CV)

2014 · Solvothermal preparation of an electrocatalytic metalloporphyrin MOF thin film and its redox hopping charge-transfer mechanism

CoPIZA/FTO thin film electrode · Electrode · BASi Epsilon potentiostat; CoPIZA/FTO working electrode, platinum mesh counter electrode, Ag/AgCl saturated KCl reference; 0.1 M LiClO4/DMF electrolyte; Ag/AgCl calibrated against Fe(CN)6^3-/4-; representative scan at 100 mV/s.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry / current-potential (j-U) curves

2012 · Electrochemical reduction of carbon dioxide using a copper rubeanate metal organic framework

bare conductive carbon paper electrode · Electrode · 0.5 M KHCO3 aqueous solution, same H-type-cell setup as CR-MOF electrode; CO2 saturated and N2-bubbled comparisons.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry / current-potential (j-U) curves

2012 · Electrochemical reduction of carbon dioxide using a copper rubeanate metal organic framework

CR-MOF deposited on conductive carbon paper · Electrode · 0.5 M KHCO3 aqueous solution in H-type cell; Ag/AgCl reference, Pt wire counter, Nafion 117 separator, ALS Model 760 potentiostat; CO2 saturated pH 8.7 and N2-bubbled pH 7.7 conditions; potentials translated to SHE and N2 data corrected by +59 mV.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry / current-potential (j-U) curves

2012 · Electrochemical reduction of carbon dioxide using a copper rubeanate metal organic framework

Cu metal electrode · Electrode · 0.5 M KHCO3 aqueous solution, same H-type-cell setup as CR-MOF electrode; CO2 saturated and N2-bubbled comparisons.

Electrochemistry ApplicationUnspecified subtype

solid-state voltammetry

2012 · Stable organic radical stacked by in situ coordination to rare earth cations in MOF materials

La-RPF8 bulk powder/crystals · Powder · Used to estimate the LUMO energy of La-RPF8; electrode/electrolyte details not reported in supplied main/SI text.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry using CHI 660 C Electrochemical Analyzer

2011 · Synthesis and characterization of a novel kind soluble, conjugated, and fluorescent chelate polymer containing fluorene ring in the backbone: Optical, electrical, and electrochemical properties

poly(3,4-HBA-Cr-FDA) bulk chelate polymer · Powder · DMSO/acetonitrile 1/4 v/v; 20 mV/s; argon-filled dry box; Pt working/counter electrodes, Ag wire reference, Fc/Fc+ calibration.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of cast MOF particles

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

Cu[Cu(pdt)2] particles cast on Pt disk electrode · Electrode · Cu[Cu(pdt)2] cast on Pt disk electrode; 0.1 M TBABr or TBAPF6 in MeCN; 10 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry of cast MOF particles

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

Cu[Ni(pdt)2] particles cast on Pt disk electrode · Electrode · Cu[Ni(pdt)2] cast on Pt disk electrode; 0.1 M TBABr or TBAPF6 in MeCN; 10 mV/s.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

[Cu(pdt)2]2-/1- solution CV sample · Model · Tetra-n-butylammonium [Cu(pdt)2] salt in acetonitrile versus Ag/Ag+.

Electrochemistry ApplicationCyclic voltammetry

Cyclic voltammetry

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

[Ni(pdt)2]2-/1- solution CV sample · Model · Solution redox couple for [Ni(pdt)2]2-/1- versus Ag/Ag+.

Electrochemistry ApplicationCyclic voltammetry

cyclic voltammetry

2009 · Soluble semi-conductive chelate polymers containing Cr(III) in the backbone: Synthesis, characterization, optical, electrochemical, and electrical properties

P-1 as-synthesised polymer · Powder · CHI 660 C analyser, 20 mV/s, dry argon box at room temperature, Pt working/counter electrodes, Ag reference calibrated vs Fc/Fc+, DMSO/acetonitrile 1/4 with TBAPF6 electrolyte

Raw method vocabulary

These are the exact source-preserving method strings consolidated by this technique group.

Show 865 reported method labels
Raw method labelMapped measurements
Cyclic voltammetry113
cyclic voltammetry99
Cyclic voltammetry (CV)29
cyclic voltammetry (CV)23
differential pulse voltammetry17
solid-state cyclic voltammetry14
LSV13
linear sweep voltammetry13
Linear sweep voltammetry for HER12
Cyclic voltammetry in three-electrode cell12
Linear sweep voltammetry (LSV) for OER12
RDE OER electrochemistry: LSV, Tafel, CV Cdl, EIS12
linear sweep voltammetry for OER11
Linear sweep voltammetry for OER11
cyclic voltammetry double-layer capacitance11
Differential pulse voltammetry (DPV)11
Linear sweep voltammetry11
OER linear sweep voltammetry (LSV)10
Two-contact electrical conductivity from linear sweep voltammetry10
Solid-state cyclic voltammetry9
OER cyclic voltammetry9
linear sweep voltammetry (LSV), OER9
cyclic voltammetry in three-electrode cell8
double-layer capacitance from CV scan-rate series7
RDE linear sweep voltammetry for OER7
Tafel analysis from LSV7
LSV and Tafel analysis7
OER LSV and Tafel analysis7
Differential pulse voltammetry7
LSV and Tafel analysis for OER7
linear sweep voltammetry and Tafel analysis6
Cyclic voltammetry double-layer capacitance6
LSV CO2RR in H-type cell6
HER linear sweep voltammetry and Tafel analysis6
CV-derived Li diffusion coefficient using Randles-Sevcik equation6
CV double-layer capacitance and ECSA calculation6
Oxygen reduction LSV/RDE in O2-saturated 0.1 M KOH6
CV5
Scan-rate-dependent cyclic voltammetry5
CV-derived charge mobility calculation5
OER RDE LSV and Tafel analysis5
Cyclic voltammetry scan-rate study5
Linear sweep voltammetry photocurrent5
Linear sweep voltammetry (LSV)5
CV scan-rate dependence5
Power-law CV analysis and capacitive/diffusion contribution fitting5
Linear sweep voltammetry screening5
HER linear sweep voltammetry5
Chronoamperometry and CV5
DPASV4
cyclic voltammetry of flexible asymmetric MSC4
linear sweep voltammetry (LSV)4
DPV selectivity test4
Cyclic voltammetry nitric oxide sensing4
Scan-rate-dependent CV kinetics analysis4
cyclic voltammetry and galvanostatic charge-discharge, three-electrode4
ORR RDE LSV and Tafel analysis4
OER linear sweep voltammetry and Tafel analysis4
CV kinetic analysis (log(i) versus log(v) b-value)4
cyclic voltammetry-derived double-layer capacitance4
linear sweep voltammetry OER testing4
CV, GCD and EIS4
Linear sweep voltammetry-derived electrical conductivity4
Tafel analysis from HER LSV curves4
Linear sweep voltammetry for ORR4
cyclic voltammetry with biologically relevant organic probes4
cyclic voltammetry with inorganic probes4
Cyclic voltammetry, capacitance and double-layer-capacitance ECSA analysis in 0.1 M TEBF4/acetonitrile.3
RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry3
DPV pH optimisation3
OER linear sweep voltammetry3
DPV optimisation3
Two-electrode HSC CV/GCD/Ragone/cycling3
differential pulse voltammetry (DPV) calibration3
CV scan-rate analysis3
Cyclic voltammetry in a three-electrode cell using Biologic SP 200 potentiostat.3
CV kinetic analysis3
CV and galvanostatic charge-discharge3
ORR RDE LSV comparison3
cyclic voltammetry / current-potential (j-U) curves3
Cyclic voltammetry (CV), three-electrode cell3
CV double-layer capacitance / ECSA proxy3
cyclic voltammetry using [Fe(CN)6]3-/4- redox probe3
three-electrode CV, GCD and EIS3
Linear sweep voltammetry HER polarisation3
Non-faradaic CV for Cdl/ECSA3
solid-state DC cyclic voltammetry3
Double-layer capacitance from CV scan-rate dependence3
CV and galvanostatic charge-discharge in symmetric coin cells3
Cyclic voltammetry (three-electrode)3
CV, GCD and EIS in three-electrode cell3
VASP/PBE/PAW DFT band-structure calculations plus UV-vis/UPS/CV measurements3
ENRR in H-cell with LSV and constant-current tests; indophenol blue NH3 quantification3
double-layer capacitance from non-Faradaic CV3
Two-probe cyclic voltammetric conductivity measurement3
Cyclic voltammetry scan-rate analysis, log(Jpa) vs log(v)3
CV, GCD and EIS in three-electrode setup3
CV and galvanostatic charge/discharge in Zn-ion coin cell3
Linear sweep voltammetry (OER polarisation)3
Cyclic voltammetry and Randles-Sevcik analysis3
spectroelectrochemical switching and three-electrode CV3
symmetric two-electrode supercapacitor CV, GCD, cycling and EIS3
Cyclic voltammetry, three-electrode3
Langmuir adsorption isotherm from CV peak currents3
three-electrode CV, GCD, EIS and cycling3
RRDE ORR linear sweep voltammetry and derived selectivity3
Cyclic voltammetry Cdl/ECSA estimation3
RRDE linear sweep voltammetry for 2e ORR3
Cyclic voltammetry and b-value/capacitive contribution analysis2
Tafel analysis derived from CV curves2
Slow-scan cyclic voltammetry2
Solid-state CV and DPV in CH2Cl2 with 0.1 M LiClO4 versus Fc/Fc+2
Three-electrode CV, GCD, and EIS2
Double-layer capacitance from CV2
DPASV calibration2
double-layer capacitance from scan-rate dependent CV2
cyclic voltammetry capacitance2
Scan-rate dependent cyclic voltammetry2
steady-state polarisation / LSV for OER2
scan-rate-dependent cyclic voltammetry2
CV double-layer capacitance and ECSA analysis2
Repeated cyclic voltammetry activation/stability2
Cyclic voltammetry redox/HOMO-LUMO analysis2
Tafel analysis derived from LSV2
Cyclic voltammetry of cast MOF particles2
OER LSV/EIS/Cdl2
Nitrate electroreduction to ammonia; LSV and chronoamperometry; indophenol blue NH3 quantification2
Electrochemical impedance/CV comparison of electrolyte anions2
CV pH optimisation2
Comparator cyclic voltammetry (CV)2
CV at variable scan rates and b-value analysis2
Double-layer capacitance from CV scan-rate series2
cyclic voltammetry scan-rate study2
cyclic voltammetry with ferrocene reference2
HER LSV, Tafel, and EIS2
HER LSV, Tafel, EIS, and chronopotentiometry2
solid-electrode cyclic voltammetry2
Cyclic voltammetry with CHI600D potentiostat2
cyclic voltammetry specific capacitance2
Cyclic voltammetry pH study2
Cyclic voltammetry (CV), three-electrode system2
double-layer capacitance and ECSA from non-faradaic CV2
cyclic voltammetry and Dunn capacitive/diffusion analysis2
Three-electrode CV and galvanostatic charge-discharge2
cyclic voltammetry in LIB2
cyclic voltammetry in SIB2
CV scan-rate b-value analysis2
Li+ diffusion coefficient from CV2
Li-S battery CV and Tafel2
CV scan-rate study2
Linear sweep voltammetry and Tafel analysis2
scan-rate CV and capacitive contribution analysis2
CV and EIS2
Cyclic voltammetry, double-layer capacitance, and ECSA2
HER LSV and Tafel analysis2
electrochemical double-layer capacitance from CV2
CV at various scan rates and pseudocapacitive analysis2
cyclic voltammetry with ferri/ferrocyanide redox probe2
square wave voltammetry calibration2
cyclic voltammetry for paracetamol oxidation2
Scan-rate CV kinetic analysis2
Cyclic voltammetry for H2O2 reduction2
Cyclic voltammetry H2O2 sensing2
Cyclic voltammetry for double-layer capacitance2
Two-electrode CV and GCD2
Scan-rate-dependent CV kinetic analysis2
Asymmetric supercapattery CV/GCD/Ragone/cycling tests2
Cyclic voltammetry-derived double-layer capacitance2
DPV reproducibility2
Three-electrode CV and GCD2
CV and EIS-derived redox conductivity2
CV and GCD, three-electrode cell2
DPV interference/selectivity test2
DPV storage stability2
Tafel analysis from LSV curves2
CV electrocatalytic ascorbic acid oxidation2
CV electrocatalytic nitrite reduction2
differential pulse voltammetry (DPV)2
LSV screening for OER2
solution-phase cyclic voltammetry2
Solid-state DC cyclic voltammetry2
cyclic voltammetry electrocatalysis2
solid-state cyclic voltammetry (CV)2
RRDE/RDE ORR voltammetry2
Double-layer capacitance (Cdl) from CV curves2
Cyclic voltammetry with redox probes and Randles-Sevcik analysis2
Cyclic voltammetry of drop-cast polymer film2
rotating ring disk electrode voltammetry2
Cyclic voltammetry (CV), three-electrode2
DFT HOMO-LUMO and electrochemical CV comparison2
cyclic voltammetry H2O2 calibration2
DPV reproducibility and storage stability2
Cyclic voltammetry-derived ECSA / double-layer capacitance2
cyclic voltammetry with methyl viologen redox mediator2
scan-rate-dependent cyclic voltammetry and Randles-Sevcik analysis2
Cyclic voltammetry glucose calibration2
Cyclic voltammetry glucose sensing2
CV charge-storage kinetics analysis2
CV and galvanostatic charge-discharge in three-electrode cell2
CV, b-value analysis, Dunn analysis, GCD and cycling2
CV kinetic analysis and pseudocapacitive contribution2
Scan-rate-dependent cyclic voltammetry and b-value analysis2
Cyclic voltammetry potential-window optimisation2
PEC HER photocurrent-time and LSV2
Dunn's model fit to CV currents2
Cyclic voltammetry (CV), two-electrode hybrid device2
Cyclic voltammetry in symmetric 2032 coin-cell supercapacitor2
UV-VIS-NIR absorption/Tauc plot plus CV against ferrocene reference2
Na half-cell galvanostatic cycling and CV2
scan-rate CV, capacitive contribution analysis, GITT and EIS2
two-electrode asymmetric supercapacitor CV, GCD, EIS and Ragone analysis2
cyclic voltammetry on bare GCE2
two-electrode ASC CV, GCD, EIS, Ragone plot and cycling2
Cyclic voltammetry using CHI 760E electrochemical workstation2
RDE linear sweep voltammetry2
CV capacitive measurements2
Cyclic voltammetry for double-layer capacitance (Cdl)2
cyclic voltammetry for double-layer capacitance2
Linear sweep voltammetry Tafel analysis2
Cyclic voltammetry double-layer capacitance scan-rate series1
Cyclic voltammetry on modified ITO1
Rotating disk electrode and rotating ring-disk electrode cyclic voltammetry1
CV, EIS and ECL responses during electrode assembly1
CV in anhydrous CH3CN/[nBu4N][PF6]1
CV, GCD and EIS in 3 M KOH1
ECSA-CV / double-layer capacitance slope1
linear sweep voltammetry for ORR1
CV cycling stability followed by ORR LSV1
powder Cu3HITP2 ORR rotating-electrode LSV and Tafel analysis1
PXRD before and after CV stability test1
Cyclic voltammetry of HHTP ligand and iron acetate controls1
Cyclic voltammetry on Au/SiO2 electrode before Cu deposition1
Two-electrode solid-state cyclic voltammetry1
Device cyclic voltammetry1
CV and GCD control measurements of activated carbon electrode1
Cyclic voltammetry with Gamry REF-3000 potentiostat1
Cyclic voltammetry control test1
Cyclic voltammetry electrocatalysis test1
Cyclic voltammetry pH-dependence test1
Cyclic voltammetry scan-rate dependence1
Differential pulse voltammetry (DPV) calibration for paracetamol1
DPV selectivity / interference test1
DPV real-sample tablet analysis1
DPV repeatability / reproducibility test1
DPV stability test after storage in air1
Differential pulse voltammetry stability traces from SI1
Cyclic voltammetry controls for THQ ligand, BPY ligand and Cu salt1
Cyclic voltammetry gravimetric capacitance1
UV-vis-NIR spectroscopy, Tauc analysis, and cyclic-voltammetry-derived LUMO estimate1
CV in symmetric EDLC1
Cyclic voltammetry and galvanostatic charge-discharge in symmetric EDLC1
CV, GCD and EIS in symmetric EDLC without conductive additive1
Three-electrode cyclic voltammetry1
GCD with increasing final cell voltages and CV stress test1
CV, GCD rate and cycle testing in symmetric EDLC1
Three-electrode LSV and online GC product analysis1
Cyclic voltammetry.1
Cyclic voltammetry comparison.1
CV, galvanostatic charge-discharge, rate and cycling tests.1
Cyclic voltammetry in 0.1 M n-Bu4NPF6/CH2Cl2 versus Fc/Fc+1
Cyclic voltammetry of ferricyanide redox process1
two-electrode ZHS CV and GCD1
linear sweep voltammetry during EtOH exposure1
Cyclic voltammetry in coin cell1
Cyclic voltammetry and optical band-gap estimation1
CV, GCD, EIS, and cycling of 8OH-DBC ligand control1
Symmetric solid-state cell CV, GCD, EIS, cycling, Ragone analysis1
Cyclic voltammetry AA probe screening1
Differential pulse voltammetry for UA detection1
Cyclic voltammetry for gravimetric capacitance1
Cycling stability cyclic voltammetry1
HER chronoamperometry and before/after LSV1
Chronoamperometry/CV/EIS OER durability1
Two-electrode full water-splitting LSV1
RDE three-electrode OER/ORR LSV, CV, EIS and chronoamperometry; post-test SEM/TEM/PXRD/FT-IR1
DPASV standard-spiking recovery1
DPASV selectivity/repeatability/reproducibility/stability1
DPASV parameter optimisation1
Quasi-solid-state asymmetric supercapacitor CV, charge/discharge, cycling, bending and Ragone analysis1
OER LSV, Tafel, EIS, Cdl and chrono-stability testing1
Three-electrode supercapacitor CV, galvanostatic charge/discharge and EIS1
Double-layer capacitance from cyclic voltammetry1
HER LSV and Tafel analysis on on-chip micro-electrochemical device1
HER stability after cyclic voltammetry and acid soaking1
two-electrode symmetric solid-state supercapacitor CV, GCD, EIS, cycling and LED demo1
three-electrode CV and galvanostatic charge-discharge1
CV of 8OH-TTC ligand control1
OER CV, LSV, Tafel and chronopotentiometry1
ORR CV and linear sweep voltammetry1
asymmetric supercapacitor CV, GCD, EIS, Ragone, and cycling1
cyclic voltammetry integrated area comparison1
three-electrode CV, GCD, and EIS protocol1
CV redox behaviour1
Accelerated CV cycling and chronopotentiometry1
LSV/CV/chronopotentiometry/EIS in three-electrode OER cell1
XPS after 1000 CV cycles1
Supplementary LSV acetylene-black control1
Double-layer capacitance from non-Faradaic CV1
Tafel analysis from OER LSV1
Cyclic voltammetry control1
Cyclic voltammetry in MeCN electrolyte1
Three-electrode CV and galvanostatic charge/discharge in Swagelok cell1
CV and UV-vis-derived HOMO/LUMO/band-gap estimates1
CV under bending1
CV and EIS of bare Pt/Pt interdigitated control1
Cyclic voltammetry of Ni3(HITP)2 electrolytic bath1
Cyclic voltammetry of individual bath constituents and combined Ni3(HITP)2 precursor bath1
Two-electrode cyclic voltammetry of Ni3(HITP)2 micro-supercapacitor1
Cycling stability by cyclic voltammetry1
CV kinetic analysis using i = a v^b and surface/diffusion contribution separation1
Cyclic voltammetry and galvanostatic charge-discharge in three-electrode cell1
Two-electrode CV, GCD, EIS, rate capability, cycling and bending tests for all-solid-state supercapacitor1
Series/parallel connection CV/GCD and LED demonstration1
Linear sweep voltammetry / two-contact pressed-pellet conductivity1
differential pulsed voltammetry / energy-level assignment1
Cyclic voltammetry on ITO substrate1
Cyclic voltammetry for O2 electroreduction1
pH-dependent redox cyclic voltammetry under N21
CV and EIS using ferri/ferrocyanide redox probe1
Cyclic voltammetry ratio optimisation1
Cyclic voltammetry for L-tryptophan oxidation1
Differential pulse voltammetry calibration1
DPV interference test1
DPV recovery and mouse plasma analysis1
Long-term DPV stability1
cyclic voltammetry redox-probe comparison1
DPV calibration for CRP1
replicate precision, CV cycling stability, storage stability, regeneration test1
CV scan-rate and capacitive/diffusive contribution analysis1
Control electrode CV/cycling of conductive carbon black1
Cyclic voltammetry and galvanostatic charge/discharge in Li half-cell1
linear sweep voltammetry and chronoamperometry1
CV cycling, chronoamperometry, chronopotentiometry1
Electrochemical double-layer capacitance from CV scan-rate series1
Linear sweep voltammetry (LSV) for benzylamine electrooxidation1
Linear sweep voltammetry (LSV) for OER/water oxidation1
Turnover frequency and mass activity calculated from LSV/current density and EDS metal-ion counts1
steady-state polarisation / LSV scan-rate dependence1
cyclic voltammetry for H2O2 oxidation1
CV/GCD/EIS of CNTs-COOH1
CV and GCD of activated carbon negative electrode1
Hybrid supercapacitor CV and GCD1
CV kinetic analysis using power-law ip = a v^b and capacitive/diffusion contribution separation1
Cyclic voltammetry in a three-electrode cell1
Conductivity annotation, CV, charge-discharge, and rate-performance plots for CNF@c-MOF-CNT nanopaper1
Symmetric double-layer supercapacitor CV/GCD cycling on Autolab/GPES1
Three-electrode CV, GCD, and EIS on Autolab/GPES and CHI 660D-31
GCD, CV, EIS, cycling and Ragone analysis for flexible all-solid-state supercapacitor1
cyclic voltammetry in ferri/ferrocyanide probe1
cyclic voltammetry of estradiol oxidation1
pH-dependent CV/oxidation potential study1
successive and between-electrode DPV repeatability/reproducibility1
ambient-storage DPV stability/robustness1
AcOH titration cyclic voltammetry1
Integrated current from cyclic voltammetry1
Scan-rate-dependent cyclic voltammetry for double-layer capacitance and ECSA1
Cyclic voltammetry polymer stabilisation screening1
CV-derived double-layer capacitance1
three-electrode OER; LSV, Tafel, EIS, chronoamperometry and double-layer capacitance1
OER LSV/Tafel/EIS/Cdl controls1
OER LSV/EIS/Cdl comparison for double-metal MOFs1
OER LSV/Tafel/EIS/Cdl/stability1
OER LSV/EIS/Cdl comparison for quadruple-metal MOFs1
OER LSV/EIS/Cdl comparison for single-metal MOFs1
OER LSV/EIS/Cdl comparison for triple-metal MOFs1
Two-probe linear sweep voltammetry conductivity measurement.1
Cyclic voltammetry in 0.1 M KOH saturated with O2 or N2.1
CV and EIS electrochemical workstation conditions1
CV kinetic analysis using log(i)-log(v) and capacitive/diffusion partitioning1
CV during mechanical bending and twisting1
CV during device bending and twisting1
Cyclic voltammetry and galvanostatic charge-discharge in a three-electrode system1
Two-electrode CV, GCD and Ragone analysis1
lean-electrolyte CV scan-rate analysis1
Cyclic voltammetry of colloidal Fe(TA)2 nanoparticles1
Cyclic voltammetry of drop-cast 16 nm Fe(TA)2 film on glassy carbon1
Cyclic voltammetry with simultaneous quartz crystal microbalance1
CV scan-speed dependence1
Cyclic voltammetry (CV) selectivity test1
Comparator CV against HKUST-1/GCE and ZIF-8/GCE1
Cyclic voltammetry (CHI660E)1
CV at variable scan rates and capacitive contribution analysis1
cyclic voltammetry-derived energy levels1
Cyclic voltammetry durability1
ORR LSV using rotating ring-disk electrode1
cyclic voltammetry comparison1
CV concentration calibration1
differential pulse voltammetry calibration1
spiked-recovery DPV and HPLC validation1
ORR CV, RDE linear sweep voltammetry, Koutecky-Levich analysis1
cyclic voltammetry and galvanostatic charge-discharge1
two-electrode ASC CV, GCD, cycling and Ragone analysis1
CV redox potentials in 0.2 M Na2SO41
cyclic voltammetry (CV), three-electrode cell1
CV and GCD, three-electrode1
CV, GCD, cycling, and Ragone analysis, two-electrode HSC1
CV of assembled ionic actuator1
three-electrode CV and GCD1
OER RDE LSV and Tafel benchmark1
ORR RDE LSV and Tafel benchmark1
ORR RDE/RRDE LSV, Tafel, Koutecky-Levich analysis1
Cyclic voltammetry concentration series1
two-electrode HSC CV/GCD/Ragone/cycling1
OER LSV, Tafel, EIS, double-layer capacitance and chronoamperometric/cyclic stability1
ORR CV, LSV, RDE, Tafel, Koutecky-Levich, cycling stability and chronoamperometry1
OER LSV, Tafel, EIS, CV double-layer capacitance and ECSA analysis1
ORR CV, LSV, rotating ring-disk electrode and Tafel analysis1
accelerated CV ageing, Koutecky-Levich analysis and H2O2 selectivity1
OER LSV, Tafel, EIS, and chronopotentiometry1
Overall water splitting LSV and chronopotentiometry1
Overall water splitting LSV1
Arrhenius analysis of LSV-derived conductivity1
Two-probe linear sweep voltammetry conductivity1
Cyclic voltammetry for paraquat on cMOF-modified and bare GC electrodes1
Differential pulse voltammetry paraquat sensing1
CV redox peak separation comparison1
CV and GCD of series/parallel supercapacitor packs1
Cyclic voltammetry concentration response1
DPV anti-interference/selectivity test1
CV reproducibility and stability1
Cyclic voltammetry (CV), asymmetric full cell1
Two-electrode flexible asymmetric supercapacitor CV, GCD, EIS, Ragone, and 5000-cycle test1
Flexibility and operating-temperature CV/GCD tests1
CV, GCD, and EIS of MnO2 negative electrode1
CV scan-rate series, GCD current series, EIS before/after cycling, 7000-cycle stability test1
Cyclic voltammetry bare-ITO control1
Linear sweep voltammetry and H-cell controlled-potential electrolysis1
two-electrode asymmetric supercapacitor CV, GCD, Ragone, EIS and cycling1
LSV durability comparison before and after cycling1
DPV analytical calibration for CBZ1
DPV standard addition in strawberry and cabbage extracts1
DPV reproducibility, repeatability, and interference tests1
DPV accumulation-time and electrodeposition-time optimisation1
CV scan-rate analysis using Dunn theory1
Two-electrode supercapacitor CV, GCD, rate and cycling tests1
Two-electrode asymmetric supercapacitor CV, GCD and Ragone analysis1
CV, GCD and cycling stability in a three-electrode setup1
CV, GCD and EIS in a three-electrode setup1
CV and GCD substrate control1
Cyclic voltammetry of NOCA@CF as binder-free LIB anode1
CV of Li2S6 symmetric cell1
Differential pulse voltammetry, oxidation side1
Differential pulse voltammetry, reduction side1
CV/DPV control comparison of blank FTO, pristine NU-1000, and Ru-NU-10001
Cyclic voltammetry of molecular Ru complex1
Solid-state cyclic voltammetry, LiClO4 electrolyte1
Solid-state cyclic voltammetry, n-Bu4NPF6 electrolyte1
Ion-size-dependent solid-state CV used as porosity/selectivity probe1
DPV standard addition in simulated blood serum1
Solution-phase cyclic voltammetry1
Cyclic voltammetry stability1
Tafel polarisation / LSV1
Three-electrode CV/GCD/EIS in 1 M KCl1
Three-electrode GCD/CV/EIS in 1 M KCl1
UV/visible absorption-derived band gap and cyclic voltammetry-derived HOMO; LUMO calculated1
2032 coin-cell LIB measurements; galvanostatic cycling, CV, EIS1
2032 coin-cell SIB measurements; galvanostatic cycling, CV, EIS1
Stepwise CV and EIS1
Square-wave voltammetry1
SWV recovery in beer samples1
SWV recovery in treated beer samples1
SWV recovery in untreated beer samples1
Intermittent SWV stability1
SWV optimisation1
Repeatability SWV across seven electrode batches1
SWV selectivity/interference1
Long-term storage stability by SWV1
SWV calibration for T-2 toxin1
OER CV cycling followed by chronoamperometry1
BSH cyclic voltammetry potential-window test1
CV comparison1
CV rate test1
Two-electrode asymmetric supercapacitor CV, GCD and cycling1
CV kinetic analysis (b-value and capacitive/diffusion contribution)1
CV sweep-rate kinetic analysis1
CV sweep-rate kinetic analysis using i = a v^b and capacitive/diffusion separation1
cyclic voltammetry, CHI 660D electrochemical workstation1
Overall water splitting two-electrode LSV and stability1
HER/OER LSV ratio-series comparison1
cyclic voltammetry glucose oxidation1
CV glucose oxidation current versus Co content1
scan-rate-dependent CV kinetics1
Electrochemical impedance spectroscopy and cyclic voltammetry1
CCl4 reduction electrocatalysis by CV and UV-vis spectroelectrochemistry1
CV, GCD and EIS of activated carbon electrode1
Two-electrode battery-supercapacitor hybrid device CV, GCD and cycling1
CV kinetic analysis, Dunn method, GCD rate testing and cycling stability1
CV, galvanostatic charge-discharge and electrochemical impedance spectroscopy1
Cyclic voltammetry and electrochemical impedance spectroscopy1
CV double-layer capacitance-derived ECSA1
homogeneous cyclic voltammetry1
linear sweep voltammetry and first derivative analysis1
scan-rate dependent cyclic voltammetry1
post-electrolysis UV-vis, CV, PXRD, DRIFTS, and TEM-EDS stability checks1
DPASV ratiometric calibration for simultaneous Cu2+, Pb2+ and Cd2+1
DPASV heavy-metal-ion peak assignment1
DPASV experimental-condition optimisation1
DPASV reproducibility across five parallel electrodes1
DPASV river-water spike recovery with ICP-AES comparison1
DPASV selectivity/interference test1
DPASV storage stability1
DPASV tap-water spike recovery1
Cyclic voltammetry at different scan rates1
Cyclic voltammetry for methanol oxidation reaction1
Cyclic voltammetry for H2O2 oxidation response1
Two-electrode ASC CV, GCD and EIS on CHI760e1
Three-electrode cyclic voltammetry and galvanostatic charge-discharge1
cyclic voltammetry and ECL intensity-time response1
CV and electrochemical impedance spectroscopy (EIS)1
ECL detection using CV in three-electrode system1
EIS, CV, and DPV comparison of sole-ligand Cu-MOF aptasensors1
Cyclic voltammetry (CV) and differential pulse voltammetry (DPV)1
DPV calibration for S. aureus detection1
EIS and DPV optimisation1
EIS and DPV recovery tests in spiked food samples1
EIS and DPV selectivity, reproducibility, storage-stability, and regeneration tests1
Scan-rate-dependent CV and capacitive contribution analysis1
Cyclic voltammetry plus Tauc plot1
Cyclic voltammetry at various scan rates1
CV and Randles-Sevcik analysis1
DPV/CV optimisation1
standard addition DPV in human serum and urine1
standard addition DPV in low-dilution human serum and urine1
DPV repeatability, reproducibility, stability and selectivity tests1
cyclic voltammetry of intrinsic Cu redox transitions1
chronoamperometry and CV optimisation1
cyclic voltammetry during electrodeposition1
CV/SWV pH dependence for paracetamol oxidation1
real-sample SWV assay1
reproducibility by SWV currents from five identically fabricated electrodes1
SWV calibration versus synthesis time1
CV, GCD, rate and cycling tests for AC cathode1
Full-cell CV, GCD, Ragone and cycling tests1
Two-electrode asymmetric-supercapacitor cyclic voltammetry1
CV capacitive/diffusion contribution analysis1
two-electrode supercapattery CV, GCD, Ragone and cycling1
two-electrode supercapattery CV, GCD and cycling1
Cyclic voltammetry of asymmetric cell1
ECSA by CV double-layer capacitance and EIS Nyquist charge-transfer resistance1
Three-electrode CV voltage-window screening for device electrodes1
Cyclic voltammetry in three-electrode configuration1
Cyclic voltammetry of asymmetric hybrid supercapacitor device1
BMOF/ZnO-FTO film CV1
BPDPNDI ligand CV1
DFDNB CV1
DNT CV1
MV2+ CV1
Cyclic voltammetry in three-electrode Swagelok cell1
Cyclic voltammetry for LUMO/onset reduction potential1
CV and galvanostatic charge-discharge in three-electrode configuration1
Aqueous cyclic voltammetry1
Cyclic voltammetry in DMF1
Cyclic voltammetry of free linker in DMF1
Cyclic voltammetry of SAM@FTO1
cyclic voltammetry double-layer capacitance and ECSA1
CV kinetics analysis1
cyclic voltammetry (homogeneous linker)1
cyclic voltammetry (MOF thin film)1
LSV, Tafel analysis, CV, EIS and Cdl/ECSA analysis1
Long-term storage stability CV1
Recurrent cyclic voltammetry stability1
HLIC CV, GCD, Ragone analysis and long-term cycling1
cyclic voltammetry and electrochemical impedance spectroscopy1
Scan-rate-dependent CV, power-law b-value and Dunn capacitive/diffusion separation1
CV, galvanostatic cycling, rate performance, EIS and self-discharge control tests1
Activated carbon electrode CV, GCD, EIS and capacity-current testing1
Asymmetric supercapacitor CV, GCD, EIS, Ragone and cycling tests1
CV scan-rate kinetics and capacitive/diffusion contribution analysis1
CV and galvanostatic charge-discharge (GCD)1
Cyclic voltammetry double-layer capacitance (Cdl) from scan-rate-dependent capacitive current1
Turnover frequency calculated from LSV curves1
DPV calibration for DON1
Spiked wheat sample recovery by DPV aptasensor1
OER cyclic voltammetry before CA treatment1
Cyclic voltammetry of HTM and HTM/In10, SI Figure S5 caption only1
Cyclic voltammetry at varied scan rates1
b-value and capacitive/diffusion contribution analysis from CV curves1
Hybrid supercapacitor CV, GCD, Ragone plot, and cycling1
OER durability: post-CV LSV and chronoamperometry1
Countercation-dependent CV and EIS redox conductivity1
CV and GCD1
Two-electrode hybrid supercapacitor CV/GCD/Ragone/cycling1
Cyclic voltammetry with in situ transmittance1
Electrochromic cycling stability and post-cycling spectroscopy/CV1
CV response versus Cu3(HBC)2 modification concentration1
HUVEC culture-medium DPV and cell assays1
DPV monitoring of rutin hydrolysis1
cyclic voltammetry pH dependence1
CV/DPV response to quercetin metabolite1
cyclic voltammetry scan-rate dependence1
DPV determination of rutin in medicinal tablets1
DPV serum recovery and chemiluminescence comparison1
DPV specificity and reproducibility tests1
RRDE LSV/selectivity in 0.1 M KOH1
RRDE LSV/selectivity analogue comparison1
linear sweep voltammetry and chronopotentiometry OER testing1
Linear sweep voltammetry for HER across M23(M13.HAHATN)2 variants1
Durability by repeated CV, chronoamperometry, post-test XRD/TEM/SEM1
galvanostatic discharge-charge, cyclic voltammetry, rate capability, long-term cycling1
CV scan-rate kinetics and Laviron analysis1
intermittent DPV stability test1
DPV standard addition in human urine1
Cyclic voltammetry in pure ionic liquid [BMIM][TFSI]1
Cyclic voltammetry in 3 M KCl aqueous electrolyte1
EIS and cyclic voltammetry on CHI 660E workstation1
Cyclic voltammetry used as conductivity evidence1
LSV and chronoamperometry under varied KOH/KCl electrolyte composition1
Cyclic voltammetry, chronoamperometric I-t response and linear sweep voltammetry1
LSV and square-wave voltammetry1
ASC CV and GCD1
CV cycling comparison1
activated carbon cyclic voltammetry1
ASC cyclic voltammetry1
cyclic voltammetry in three-electrode system1
Symmetric-cell CV for LiPS catalysis1
cyclic voltammetry and Dunn correction1
square wave voltammetry (SWV)1
linear sweep voltammetry (LSV) and Tafel analysis1
Linear sweep voltammetry (LSV) for benzyl alcohol oxidation1
CV, rotating disk linear sweep voltammetry and Koutecky-Levich analysis1
Accelerated ageing test by cyclic voltammetry1
Cyclic voltammetry effective-area analysis1
SWV reproducibility, stability and specificity tests1
Square wave voltammetry (SWV)1
Cyclic voltammetry and charge-discharge testing1
Asymmetric supercapacitor device CV, GCD, EIS, Ragone and cycling tests1
cyclic voltammetry and Randles-Sevcik analysis1
RRDE ORR voltammetry1
Activated-carbon anode CV/GCD supporting curves1
CR2025 lithium half-cell galvanostatic charge/discharge, CV and EIS1
scan-rate-dependent cyclic voltammetry and log(i) versus log(v) fitting1
Cyclic voltammetry (CV), scan-rate series1
Cyclic voltammetry (CV), potential-window evaluation1
HER linear sweep voltammetry (LSV)1
CV cycling and chronopotentiometry1
CV cycling and chronoamperometry1
DPV sensing comparison on bare GCE1
CV and differential pulse voltammetry (DPV) sensing of 5-HT, uric acid and caffeic acid1
CV, GCD, strain-dependent capacitance and Ragone analysis of stretchable all-solid-state SC1
CV kinetic b-value analysis1
Cyclic voltammetry on glassy carbon electrode1
CV deposition and chronoamperometry on GCE1
Cyclic voltammetry (CV), SI bare Ni-foam control1
Cyclic voltammetry (CV), asymmetric device1
Two-electrode hybrid supercapacitor CV, GCD, Ragone and cycling tests1
Linear sweep voltammetry (LSV), chopped and continuous1
HER growth-time optimisation LSV1
HER phosphating-temperature optimisation LSV and EIS1
mass-normalised HER and OER LSV1
OER growth-time optimisation LSV and EIS1
OER phosphating-temperature optimisation LSV and EIS1
overall water splitting two-electrode LSV1
linear sweep voltammetry and cyclic voltammetry1
LSV comparison1
ENRR LSV and UV-vis NH3 test1
solid-state voltammetry1
CV and GCD blank-control testing1
scan-rate CV / Dunn analysis1
Cyclic voltammetry (CV) and Randles-Sevcik active-area calculation1
Ratiometric DPV nitrite sensing using iNO2-/iTMB1
Double-layer capacitance and ECSA from CV1
cyclic voltammetry of ligand controls1
Scan-rate-dependent cyclic voltammetry and capacitive/diffusion analysis1
cyclic voltammetry in two-electrode BSH1
PXRD after CV cycling/OER1
accelerated CV cycling stability1
CV analysis of non-catalytic [Co(bpy)3]3+ wave through inert Zn(NDI) film1
steady-state catalytic cyclic voltammetry with [Co(bpy)3]3+ electron acceptor1
background cyclic voltammetry on bare FTO1
cyclic voltammetry of [Co(bpy)3]3+ on glassy carbon1
cyclic voltammetry without [Co(bpy)3]3+1
postmortem X-ray diffraction after LSV1
linear sweep voltammetry electrochemical stability window1
CR2025 sodium-ion battery CV/GCD/cycling/rate tests1
CV kinetic analysis and Dunn method1
Lithium-ion battery cyclic voltammetry1
Three-electrode cyclic voltammetry redox test1
Cyclic voltammetry and UV-vis control measurements1
GCD and CV of asymmetric supercapacitor1
cyclic voltammetry scan-rate series for double-layer capacitance / ECSA1
cyclic voltammetry in H2O2/PBS1
CV/EIS/amperometric reproducibility, stability, repeatability, reliability, selectivity and serum recovery tests1
Activated carbon negative-electrode CV, GCD, capacitance and Nyquist tests1
Asymmetric supercapacitor CV and GCD1
ASC supplementary potential-window CV and Nyquist testing1
Cyclic voltammetry and galvanostatic charge-discharge for Zn2(bdc)2P1
CV scan-rate Randles-Sevcik analysis1
DPV and EIS1
CV optimisation of MOF loading and Au electrodeposition time1
DPV clinical serum comparison1
DPV LPS calibration1
DPV buffer-versus-serum matrix comparison1
DPV spiked serum recovery1
CV scan-rate series with Randles-Sevcik analysis1
CV and ECL mechanism study1
Cyclic voltammetry construction characterisation1
Cyclic voltammetry on drop-cast thin films1
Voltage disparity from OER and HER LSV curves1
Cyclic voltammetry double-layer capacitance and ECSA calculation1
Magnified LSV extrapolation onset-potential table1
Two-electrode overall water-splitting LSV and chronoamperometry1
Urea electrolysis LSV1
CV, GCD and EIS for benzoic-acid series1
CV, GCD and EIS for H2BDC series1
CV, GCD and EIS for H3BTC series1
Two-electrode HSC CV, GCD, EIS, Ragone and cycling1
CV and Nyquist EIS comparison of slurry-based H2BDC-80 and binder-free H2BDC-801
Cyclic voltammetry for ECSA/Cdl1
Cycling durability LSV1
CV scan-rate kinetic analysis1
Cyclic voltammetry double-layer capacitance / ECSA proxy1
OER durability by CV cycling and chronoamperometry1
cyclic voltammetry with diquat redox mediator1
cyclic voltammetry control electrodes with methyl viologen1
cyclic voltammetry without redox mediator1
solvent/electrolyte kinetic isotope effect by CV1
Literature cyclic voltammetry/redox potentials cited for thermodynamic argument1
Cyclic voltammetry using CHI 660 C Electrochemical Analyzer1
Cyclic voltammetry and Randles-Sevcik diffusion coefficient analysis1
CO2 electroreduction in H-type cell with LSV, chronoamperometry, GC, and 1H NMR product analysis1
Cyclic voltammetry glucose sensing control1
Current-voltage characteristics by cyclic voltammetry1
LSV polarization in flow cell1
double-layer capacitance from CV for ECSA proxy1
cyclic voltammetry of asymmetric supercapacitor1
cyclic voltammetry (CHI 660E, three-electrode)1
Two-electrode solid-state FTSC testing; UV-vis transmittance; CV/GCD/EIS1
Two-electrode solid-state MSC testing; UV-vis transmittance; GCD/CV/EIS; cycling and bending tests1
CV/GCD ratio comparison1
CV and GCD in three-electrode system1
Solid-state cyclic voltammetry with cavity microelectrode1
Cyclic voltammetry of NDI-py in DMF with glassy carbon working electrode1
CV of blank current collector1
Two-electrode symmetric supercapacitor CV and GCD1
Cyclic voltammetry for glucose oxidation1
Cyclic voltammetry at varied scan rate1
Cyclic voltammetry glucose calibration in NaOH1
Cyclic voltammetry comparison with PP cell1
In situ XRD during cyclic voltammetry1
Symmetric supercapacitor CV, GCD, and EIS with EMIM-BF4 ionic liquid electrolyte1
Symmetric supercapacitor CV, GCD, and EIS with 1 M NEt4BF4/ACN electrolyte1
Symmetric supercapacitor CV and GCD with neat A-CuHHTP pellet electrodes1
Electrochemical impedance spectroscopy during CV cycling1
Cyclic voltammetry, two-electrode asymmetric device1
cyclic voltammetry, galvanostatic discharge-charge, cycling and rate performance1
CV scan-rate analysis, GITT, and EIS1
cyclic voltammetry and galvanostatic discharge-charge1
CV and GCD, three-electrode AC control1
Scan-rate-dependent CV and log(i)-log(v) b-value fitting1
cyclic voltammetry kinetic analysis1
full-cell CV, GCD, Ragone and cycling tests1
post-CV XPS, CV and in situ Raman during charge-discharge1
CC-CV charging state-of-charge versus time1
double-layer capacitance from CV1
OER LSV and chronoamperometry1
OER LSV/Tafel comparator1
ORR LSV/Tafel comparator1
ORR CV, LSV, chronoamperometry and RRDE1
glucose-concentration-dependent cyclic voltammetry1
pH-dependent glucose CV/current response1
long-term stability by cyclic voltammetry1
Linear sweep voltammetry (LSV) and cyclic voltammetry (CV)1
Stepwise CV, EIS and ECL characterisation of biosensor fabrication1
ECL-potential profiles and cyclic voltammetry1
CV and galvanostatic charge-discharge in symmetric two-electrode cells1
Cyclic voltammetry in a three-electrode PFA Swagelok cell1
Cyclic voltammetry with potassium salts of different anions1
Cyclic voltammetry and capacitance-versus-scan-rate comparison across hydroxide electrolytes1
Cyclic voltammetry in hydroxyl-free organic base electrolytes1
Cyclic voltammetry in sodium phosphate buffered solutions with varied pH1
Cyclic voltammetry using [Fe(CN)6]4-/3- redox probe.1
Cyclic voltammetry with cationic redox probes of different molecular sizes.1
Cyclic voltammetry of ATCh oxidation at AChE biosensors.1
Cyclic voltammetry for acidic ORR activity1
CR2032 half-cell K-ion battery galvanostatic charge-discharge, rate, cycling, CV1
CR2032 half-cell K-ion battery galvanostatic charge-discharge, rate, cycling, CV, dQ/dV, EIS1
Cyclic voltammetry of CTAB series1
Two-probe I-V method by CV1
Cyclic voltammetry kinetic analysis1
cyclic voltammetry for ORR control1
cyclic voltammetry for ORR1
pH-dependent cyclic voltammetry / Pourbaix analysis1
differential pulse adsorption stripping voltammetry (DPASV)1
Cyclic voltammetry double-layer capacitance fitting1
CV scan-rate and Laviron analysis1
CV with ferricyanide/ferrocyanide redox probe1
DPV analysis of MG in fish samples with ELISA comparison1
Selective and competitive DPV tests1
DPV feasibility comparison for MG1
Non-ratiometric DPV calibration1
DPV condition optimisation1
Ratiometric DPV calibration1
Repeated ratiometric DPV response1
DPV recovery/real-sample analysis for water and shrimp1
CV and GCD of symmetric two-electrode button cell1
Cyclic voltammetry with electrochemical quartz crystal microbalance (EQCM)1
Comparative RRDE-LSV1
RRDE LSV and chronoamperometry1
extended-window cyclic voltammetry1
Capacitive CV-derived capacitance and ECSA1
CV optimisation of Cu3(HHTP)2 loading1
CV and galvanostatic charge-discharge in R2032 coin cells1
CV, GCD cycling, EIS and rate testing of Zn@DDA-Cu||NVO full cells1
EIS, Tafel linear polarisation, and LSV in symmetric cells1
6OH-TBC ligand CV/GCD/EIS/cycling control1
Two-electrode Cu-TBC//AC CV and GCD1
OER LSV/polarisation, Tafel, EIS, CV-derived Cdl/ECSA and chronopotentiometry1
Cyclic voltammetry, two-electrode hybrid device1
RDE linear sweep voltammetry and Koutecky-Levich analysis1
RDE linear sweep voltammetry and chronoamperometry benchmark1
cyclic voltammetry for BPA and BPS1
cyclic voltammetry scan-rate study and Laviron analysis1
CV response comparison of M-HHTP controls1
CV optimisation of pH, Fe-HHTP concentration, deposition potential, and deposition time1
CR2032 Li-ion coin cells; CV, galvanostatic charge-discharge, EIS1
CR2032 Li-S coin cells; CV, galvanostatic charge-discharge, rate capability, EIS, diffusion coefficient from Randles-Sevcik1
cyclic voltammetry of Li-S cell1
symmetric-cell CV and LSV/Tafel1
Li+ transfer number and CV-derived diffusion coefficient1
Electrochemical impedance spectroscopy and double-layer capacitance CV1
Dunn method CV scan-rate analysis1
cyclic voltammetry in CR2032 Li half-cell1
Cyclic voltammetry (CV) at different scan rates1
Stepwise cyclic voltammetry (CV)1
DPV detection in total RNA extracted from L02 and MCF-7 cells1
DPV calibration for simultaneous miRNA-21 and miRNA-1411
DPV calibration for miRNA-211
DPV optimisation of sensor construction variables1
DPV calibration for miRNA-21 using Fc single signal1
DPV calibration for miRNA-21 using MB single signal1
Cyclic voltammetry for glucose response1
Glucose CV scan-rate study1
Cyclic voltammetry for H2O2 response1
H2O2 CV scan-rate study1
differential pulse voltammetry (DPV) calibration for NIF1
DPV optimisation of coating concentration, coating amount, and pH1
DPV reproducibility, storage stability, and selectivity tests1
real sample DPV assay of NIF tablets with HPLC comparison1
RRDE linear sweep voltammetry and H2O2 selectivity calculation1
CV and DPV1
DPV concentration calibration1
DPV peak current optimisation1
DPV pH/interference testing1
DPV repeatability1
DPV/CV/EIS variant performance1
Amperometric/DPV dopamine detection in wearable patch context1
DPV detection of AA and UA1
DPV for physiological dopamine range1
DPV anti-interference test1
photocurrent, EIS, LSV, CV, and Mott-Schottky electrochemical analysis1
CV, LSV and EIS1
Rotating disk electrode linear sweep voltammetry; Koutecky-Levich analysis1
Cyclic voltammetric stability scan plus SEM/XRD checks1
bulk/grinding homogeneity CV/EIS1
CV scan-rate AA sensing1
H-type cell CO2 electroreduction, LSV and constant-potential chronoamperometry with GC product analysis1
Deposition-volume optimisation by CV1
Differential pulse voltammetry pH optimisation1
Differential pulse voltammetry (DPV) calibration for imidacloprid1
Repeatability by consecutive CV measurements1
Cyclic voltammetry in ferricyanide/ferrocyanide redox system1
Cyclic voltammetry with [Ru(bpy)3]2+1
CV and ECL control measurements with HHTP film1
Cyclic voltammetry double-layer capacitance fitting for ECSA comparison1
CV cycling durability and post-test SEM/XRD1