Harmonised techniqueNon-exclusive mapping

Electrical conductivity

Two- and four-contact conductivity, current-voltage and van der Pauw measurements.

520primary papers
1,789mapped measurements
5,450linked results
873raw 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.

Mapped measurements

Filter source method wording, sample context and scientific purpose.

1,789 measurements

Electrical TransportFour contact

Four-point probe conductivity

2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring

In-situ grown CuBTA film on MEMS IDEs · Thin Film · Drop-cast and in-situ grown MBTA films on silicon wafer; numeric Table S4 values unavailable in provided SI text

Electrical TransportFour contact

Four-point probe conductivity

2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring

CuBTA powder · Powder · Powder sample, 25 deg C

Electrical TransportFour contact

Four-point probe conductivity

2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring

In-situ grown NiBTA film on MEMS IDEs · Thin Film · Drop-cast and in-situ grown MBTA films on silicon wafer; numeric Table S4 values unavailable in provided SI text

Electrical TransportFour contact

Four-point probe conductivity

2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring

NiBTA powder · Powder · Powder sample, 25 deg C

Electrical TransportFour contact

Four-probe electrical conductivity

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

CH as-synthesised powder · Powder · Four-probe attempt on CH; resistance exceeded instrument range.

Electrical TransportFour contact

Four-probe electrical conductivity

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

CNH as-synthesised powder · Powder · Four-probe conductivity measurement on CNH; sample geometry not specified.

Diffraction StructureUnspecified subtype

Powder X-ray diffraction (Ultima IV)

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

Co-HHTQ-MOF powder · Powder · Experimental XRD spectrum compared with standard simulated spectra.

Electrical TransportUnspecified subtype

electronic conductivity measurement

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

as-synthesised Ni2DDA black powder · Powder · Room-temperature electronic conductivity of Ni2DDA powder; geometry not specified in supplied text.

Electrical TransportUnspecified subtype

FET I-V and liquid-gate transfer curves using Keysight B1500A

2026 · In-situ growth of high-crystallinity M3(hexaaminotriphenylene)2 (M = Co, Ni) thin film for field-effect transistor-based glucose biosensor

Co/Ni-HITP-GA-GOX-FET sensor · Electrode · Electrical properties of Co/Ni-HITP-GA-GOX-FET; liquid-gate transfer curve

Electrical TransportUnspecified subtype

Thermionic-emission and Cheung analysis of I-V data

2026 · Investigation of charge transport and Schottky properties in a 1D Cd(II) coordination polymer featuring 9-anthracenecarboxylic acid

ITO/CP1/Al Schottky diode · Thin Film · Series resistance, barrier height and ideality factor extracted from dV/d(lnI) vs I and H(I) vs I plots.

Electrical TransportTwo contact

Two-probe current-voltage (I-V) measurement

2026 · Investigation of charge transport and Schottky properties in a 1D Cd(II) coordination polymer featuring 9-anthracenecarboxylic acid

ITO/CP1/Al Schottky diode · Thin Film · Keithley 2635B source meter; voltage sweep from -1 V to +1 V at room temperature.

Electrical TransportUnspecified subtype

Logarithmic I-V and power-law analysis

2026 · Investigation of charge transport and Schottky properties in a 1D Cd(II) coordination polymer featuring 9-anthracenecarboxylic acid

ITO/CP1/Al Schottky diode · Thin Film · ln(I) vs ln(V) plot under forward bias used to identify Ohmic and space-charge-limited-current regions; DC conductivity reported for the Ohmic region.

Electrical TransportFour contact

four-probe DC conductivity on pelletised powder

2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks

Eu-HHTP powder · Powder · temperature_range: variable temperature; geometry: pelletised powder

Electrical TransportFour contact

four-probe DC conductivity on pelletised powder

2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks

Gd-HHTP powder · Powder · temperature_range: variable temperature; geometry: pelletised powder

Electrical TransportFour contact

four-probe DC conductivity on pelletised powder

2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks

Sm-HHTP powder · Powder · temperature_range: variable temperature; geometry: pelletised powder

Electrical TransportFour contact

four-probe DC conductivity on pelletised powder

2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks

Tb-HHTP powder · Powder · temperature_range: variable temperature; geometry: pelletised powder

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Ca-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Ca-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Co-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Co-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Cu-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Cu-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Mg-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Mg-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Ni-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Ni-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportVariable temperature

Temperature-dependent conductivity with Arrhenius fitting

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Zn-HHTP pellet sample · Pellet · Conductivity measured over temperature range in PPMS; activation energy extracted using Arrhenius equation. Co-HHTP temperature dependence used AC high-resistance mode.

Electrical TransportFour contact

Four-probe DC conductivity on pressed pellet

2026 · Structure and Electrical Transport Properties of Metal Cate-Cholate Frameworks: The Metal Center Matters†

Zn-HHTP pellet sample · Pellet · 30 mg powder pressed in 8 mm die for 5 min at 10 MPa; four-point linear probe, 1.2 mm tip spacing; PPMS without liquid helium.

Electrical TransportUnspecified subtype

literature-referenced electrical conductivity

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

Cd2(TTFTB) MOF powder/crystals · Powder · Previously reported intrinsic conductivity for Cd2(TTFTB) MOF; no new conductivity device described in this paper.

Electrical TransportTwo contact

two-point probe measurement

2026 · Sub-Femtomolar, Label-Free Small-Molecule Sensing with Nanoarchitectonic Metal-Organic Frameworks

isolated CuHITP film fragment converted on Cu foil · Thin Film · Isolated CuHITP film fragment delaminated from Cu foil after similar templated synthesis.

Electrical TransportUnspecified subtype

Flash-photolysis time-resolved microwave conductivity (FP-TRMC)

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

PMC-3-I/PMMA drop-cast FP-TRMC sample on quartz · Thin Film · Room-temperature N2 measurement; 355 nm Nd:YAG third-harmonic laser pulses, 10 Hz, ca. 5 ns, probe microwave around 9.1 GHz and 10 mW.

Electrical TransportUnspecified subtype

Pressed-pellet I-V conductivity

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

PMC-3-Br pressed pellets · Pellet · I-V measured at room temperature on 3 mm diameter pressed pellets in an N2-purged glovebox using Keithley 2450.

Electrical TransportUnspecified subtype

Pressed-pellet I-V conductivity

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

PMC-3-Cl pressed pellets · Pellet · I-V measured at room temperature on 3 mm diameter pressed pellets in an N2-purged glovebox using Keithley 2450.

Electrical TransportUnspecified subtype

Pressed-pellet I-V conductivity

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

PMC-3-I pressed pellets · Pellet · I-V measured at room temperature on 3 mm diameter pressed pellets in an N2-purged glovebox using Keithley 2450.

Electrical TransportTwo contact

Two-probe dc single-crystal conductivity

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

PMC-3-Br single crystals · Single Crystal · Variable-temperature conductivity measured along the pi-stacking crystallographic c axis in a liquid He PPMS cryostat using Keithley 2611.

Electrical TransportTwo contact

Two-probe dc single-crystal conductivity

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

PMC-3-Cl single crystals · Single Crystal · Variable-temperature conductivity measured along the pi-stacking crystallographic c axis in a liquid He PPMS cryostat using Keithley 2611.

Electrical TransportTwo contact

Two-probe I-V conductivity on pressed pellet

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

Pressed-pellet m-TTFTB-Co-MOF conductivity sample · Pellet · Room-temperature resistance/I-V measurement with gold wires and conductive carbon adhesive paste on pressed m-TTFTB-Co-MOF pellet.

Electrical TransportFour contact

four-point probe resistivity/conductivity on pressed pellet

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

pressed DDA-Cu pellet · Pellet · 100 mg powder pressed in 10 mm die at 12-30 MPa; measured around 298 K

Electrical TransportFour contact

four-point probe after electrolyte soaking

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

pressed DDA-Cu pellet · Pellet · DDA-Cu treated with 4 M LiTFSI in DOL/DME electrolyte for 2 days

Electrical TransportUnspecified subtype

conductivity comparison from bar chart

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

pressed DDA ligand pellet · Pellet · DDA ligand pellet/control conductivity compared with DDA-Cu

Electrical TransportUnspecified subtype

SEM/AFM/XRD/XPS/contact angle/electronic conductivity tests

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 · DDA-Cu-coated zinc anode structural, wetting and conductivity characterisation.

Electrical TransportFour contactVariable temperature

Four-point-probe I-V and temperature-dependent single-crystal conductance

2025 · A Low-Symmetry Copper Benzenehexathiol Coordination Polymer with In-Plane Electrical Anisotropy

Cu5BHT single-crystal six-electrode device · Single Crystal · Room-temperature I-V measured in N2; temperature-dependent 4pp measurements from 300 to 30 K under high vacuum (<10^-6 mbar) in a closed-cycle cryogenic probe station.

Electrical TransportFour contactVariable temperature

Variable-temperature DC conductivity by van der Pauw method

2025 · A Low-Symmetry Copper Benzenehexathiol Coordination Polymer with In-Plane Electrical Anisotropy

Cu5BHT van der Pauw thick film · Thin Film · Cu5BHT thick film measured from 310 to 5 K; sheet resistance converted to bulk resistivity using thickness.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Cu-BHT-o CVD thin film without NH3 · Thin Film · Room-temperature conductivity of Cu-BHT-o control thin films.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Cu-BHT-w NH3-assisted CVD thin film · Thin Film · Room-temperature conductivity of Cu-BHT-w thin films.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Cu-HHB-o CVD thin film without NH3 · Thin Film · Room-temperature conductivity of Cu-HHB-o control thin films.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Cu-HHB-w NH3-assisted CVD thin film · Thin Film · Room-temperature conductivity of Cu-HHB-w thin films.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-o CVD thin film without NH3 · Thin Film · Room-temperature conductivity of Fe-HHB-o thin-film control grown without NH3.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-w NH3-assisted CVD thin film · Thin Film · Room-temperature conductivity of as-grown NH3-assisted Fe-HHB-w thin films.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-w-110/110 equal tube configuration · Thin Film · Conductivity comparison for equal 110/110 tube configuration.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-w-65/160 reversed tube configuration · Thin Film · Conductivity comparison for reversed 65/160 tube configuration.

Electrical TransportFour contact

four-probe electrical conductivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-w-QB quartz-boat configuration · Thin Film · Conductivity comparison for quartz-boat growth configuration.

Electrical TransportFour contactVariable temperature

temperature-dependent four-probe conductivity / resistivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-o CVD thin film without NH3 · Thin Film · Measured from 295 to 573 K; Fe-HHB-o follows variable range hopping plot.

Electrical TransportFour contactVariable temperature

temperature-dependent four-probe conductivity / resistivity

2025 · Ammonia-Assisted Chemical Vapor Deposition Growth of Two-Dimensional Conjugated Coordination Polymer Thin Films

Fe-HHB-w NH3-assisted CVD thin film · Thin Film · Measured from 295 to 573 K; Fe-HHB-w data fitted with Arrhenius equation.

Electrical TransportFour contact

Room-temperature four-probe electrical measurement

2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals

Cu3F2HHTP2 single-crystal device · Single Crystal · Single-crystal device; conductivity calculated from device resistance and cylindrical cross-section assumption.

Electrical TransportFour contact

Room-temperature four-probe electrical measurement

2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals

Cu3FHHTP2 single-crystal device · Single Crystal · Single-crystal device; conductivity calculated from device resistance and cylindrical cross-section assumption.

Electrical TransportFour contact

Room-temperature four-probe electrical measurement

2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals

Cu3HHTP2 single-crystal device · Single Crystal · Single-crystal device; conductivity calculated from device resistance and cylindrical cross-section assumption.

Electrical TransportVariable temperature

Variable-temperature DC resistance/conductivity

2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals

Cu3F2HHTP2 single-crystal device · Single Crystal · Autocube attoDRY 2100; 295 to 150 K at 5 K/min; activation energy extracted from linear fit of ln(sigma) versus 1/T.

Electrical TransportUnspecified subtype

I-V control

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

electrochemical and Pt-only controls · Electrode · 0.3 nm Pt layer on glass without MOF

Electrical TransportFour contactVariable temperature

four-probe I-V and variable-temperature conductivity

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

220 nm edge-on Cu3(HHTP)2 four-probe film · Thin Film · Au contacts; I-V and sigma(T) under ~1e-5 mbar

Electrical TransportFour contactVariable temperature

four-probe I-V and variable-temperature conductivity

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

260 nm face-on Cu3(HHTP)2 four-probe film · Thin Film · Au contacts; I-V and sigma(T) under ~1e-5 mbar

Electrical TransportTwo contact

Two-contact resistance with silver dag contacts

2025 · Conductive metal-organic framework synthesis from metal nanoparticle precursors

Cu3(HITP)2 on paper, 24 h, silver-dag contacts · Electrode · Contacts separated by 0.5 cm on paper sample after 24 h MOF synthesis.

Electrical TransportTwo contact

Two-contact resistance with silver dag contacts

2025 · Conductive metal-organic framework synthesis from metal nanoparticle precursors

Ni3(HITP)2 on paper, 24 h, silver-dag contacts · Electrode · Contacts separated by 0.5 cm on paper sample after 24 h MOF synthesis.

Electrical TransportFour contact

Four-probe electrical conductivity measurement

2025 · Conductive MOFs with tailored polarization loss for broadband absorption at ultrathin thickness

CuM-HHTP sample set · Powder · SI Table S2 reports electrical conductivity for CuZn-1, CuZn-2, CuZn-3, CuMn-4, CuCo-5, and CuNi-6.

Electrical TransportFour contact

Four-point probe bulk pellet conductivity

2025 · Controlling the Spatiotemporal Self-Organization of Stimuli-Responsive Nanocrystals under Out-of-Equilibrium Conditions

2D RD Ni3(HITP)2 interface particles · Powder · 26-31 mg of each zone pressed in 6 mm die at approx. 1050 psi for 20 min; Signatone tungsten carbide four-point probe with 1.25 mm spacing.

Electrical TransportUnspecified subtype

Current-voltage (I-V) chemiresistive sensing

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 · Keithley 2612 Source Meter; MOF film dipped in water with different levels of PFOA contamination.

Electrical TransportFour contact

Four-probe electrical conductivity

2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field

Pressed-disc Cu3(HHTP)2 for four-probe conductivity · Pellet · RTS-8 four-point probe; powder pressed into discs.

Electrical TransportFour contact

Four-probe electrical conductivity

2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field

Pressed-disc Cu3(HITP)2 for four-probe conductivity · Pellet · RTS-8 four-point probe; powder pressed into discs.

Electrical TransportFour contact

Four-probe electrical conductivity

2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field

Pressed-disc Cu3(THT)2 for four-probe conductivity · Pellet · RTS-8 four-point probe; powder pressed into discs.

Electrical TransportUnspecified subtype

I-V characterisation of 100 nm device contacts

2025 · Dirac-cone induced metallic conductivity in Cu3(HHTP)2: high-quality MOF thin films fabricated via ML-driven robotic synthesis

Cu3(HHTP)2 SURMOF with 100 nm lithographic 4-terminal contacts · Thin Film · Linear I(V) at 100 K and 300 K

Electrical TransportUnspecified subtype

Four-terminal conductivity using electron-beam-lithography contacts

2025 · Dirac-cone induced metallic conductivity in Cu3(HHTP)2: high-quality MOF thin films fabricated via ML-driven robotic synthesis

Cu3(HHTP)2 SURMOF with 100 nm lithographic 4-terminal contacts · Thin Film · 100 nm contact separation, 40 um channel width, 1.5 nm Cr / 40 nm Au contacts, Keithley 2450; applied currents +/-10 uA

Electrical TransportFour contact

Four-probe conductivity with Au shadow-mask pads

2025 · Dirac-cone induced metallic conductivity in Cu3(HHTP)2: high-quality MOF thin films fabricated via ML-driven robotic synthesis

Cu3(HHTP)2 SURMOF with 100 um shadow-mask Au contact spacing · Thin Film · 100 x 100 um2 Au pads, 100 um contact separation, room temperature, vacuum thermal evaporation contact preparation

Electrical TransportFour contactVariable temperature

Temperature-dependent four-probe conductivity

2025 · Dirac-cone induced metallic conductivity in Cu3(HHTP)2: high-quality MOF thin films fabricated via ML-driven robotic synthesis

Cu3(HHTP)2 SURMOF with 100 um shadow-mask Au contact spacing · Thin Film · 100 um contact spacing, measured from 100 K to 300 K; activated decrease on cooling

Electrical TransportFour contact

Four-probe conductivity with 15 um electrode spacing

2025 · Dirac-cone induced metallic conductivity in Cu3(HHTP)2: high-quality MOF thin films fabricated via ML-driven robotic synthesis

Cu3(HHTP)2 SURMOF with 15 um contact spacing · Thin Film · Reduced electrode spacing control compared with 100 um device

Electrical TransportUnspecified subtype

Four-wire resistance conductivity and I-V on activated pressed pellet

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

MOF 1 activated/vacuum-dried pellet · Pellet · Sample activated at 80 deg C for 15 h; conductivities reported at room temperature in Table 3 and at 353 K in text; I-V measured across 297-353 K.

Electrical TransportUnspecified subtype

Four-wire resistance conductivity on pressed pellet

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

MOF 1 as-synthesised crystals/pellet · Pellet · 40 mg MOF pellet compressed at 2.50 kPa for 4 min; 0.96 cm diameter, 0.10-0.20 cm thickness; Keithley digital multimeter; sigma = L/(RA).

Electrical TransportUnspecified subtype

Humidity-dependent EIS/Nyquist proton-conductivity analysis

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

MOF 1 100 mg humidity pellet · Pellet · Relative humidity varied from 30% to 98%; temperature-dependent proton conductivities measured to 353 K at 98% RH.

Electrical TransportUnspecified subtype

Four-wire resistance conductivity and I-V on activated pressed pellet

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

MOF 2 activated/vacuum-dried pellet · Pellet · Sample activated at 80 deg C for 15 h; conductivities reported at room temperature in Table 3 and at 353 K in text; I-V measured across 297-353 K.

Electrical TransportUnspecified subtype

Four-wire resistance conductivity on pressed pellet

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

MOF 2 as-synthesised crystals/pellet · Pellet · 40 mg MOF pellet compressed at 2.50 kPa for 4 min; 0.96 cm diameter, 0.10-0.20 cm thickness; Keithley digital multimeter; sigma = L/(RA).

Electrical TransportUnspecified subtype

Humidity-dependent EIS/Nyquist proton-conductivity analysis

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

MOF 2 100 mg humidity pellet · Pellet · Relative humidity varied from 30% to 98%; temperature-dependent proton conductivities measured to 353 K at 98% RH.

Electrical TransportFour contact

Four-probe sheet resistance

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

CuNi-HHTP nanorods · Powder · Sheet resistance of c-MOF electrodes.

Electrical TransportVariable temperature

Temperature-dependent I-V and Arrhenius analysis

2025 · Electrically Conducting Redox-Complementary Dual-Ligand 2D Graphitic MOF with Orthogonal Charge Transport Pathways

CDL-MOF1 pressed pellet · Pellet · Same pellet setup immersed in temperature-controlled sand bath; devices held 30 min at each temperature; Figure S6 shows CDL-MOF1 I-V plots from 298-358 K.

Electrical TransportTwo contact

Two-probe direct current-voltage (I-V) pellet conductivity

2025 · Electrically Conducting Redox-Complementary Dual-Ligand 2D Graphitic MOF with Orthogonal Charge Transport Pathways

CDL-MOF1 pressed pellet · Pellet · Pressed pellets under ambient conditions; stainless-steel rods with flat round tips radius 0.135 cm; silver paint contacts; L approx 0.02 cm; area 0.057 cm2; 3-5 devices.

Electrical TransportUnspecified subtype

AC impedance conductivity of pressed pellets in a solid-state battery testing mould

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

NiCo-DPTTZ-MOF powder, ratio not defined · Powder · Pressed under 10 MPa; AC impedance amplitude 10 mV, frequency 100 kHz to 0.01 Hz; conductivity calculated as sigma = L/(R S).

Electrical TransportFour contact

four-probe pressed-pellet conductivity

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

Cu-S-HHS pressed pellet · Pellet · 20 mg MOF powder pressed in 8 mm die for 5 min at 20 MPa; four-point linear probe spacing 1.2 mm; variable T 80-350 K.

Electrical TransportUnspecified subtype

two-/four-electrode single-crystal I-V conductivity

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

Cu-S-HHS plate device · Single Crystal · Drop-cast rods or Cu-S-HHS plates on Si/SiO2, PMMA/EBL patterning, Ti/Au contacts; resistance used when voltage drop unavailable.

Electrical TransportUnspecified subtype

two-/four-electrode single-crystal I-V conductivity

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

Cu-S-HHS rod device · Single Crystal · Drop-cast rods or Cu-S-HHS plates on Si/SiO2, PMMA/EBL patterning, Ti/Au contacts; resistance used when voltage drop unavailable.

Electrical TransportFour contact

four-probe pressed-pellet conductivity

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

Cu-Se-HHS pressed pellet · Pellet · 20 mg MOF powder pressed in 8 mm die for 5 min at 20 MPa; four-point linear probe spacing 1.2 mm; variable T 80-350 K.

Electrical TransportUnspecified subtype

two-/four-electrode single-crystal I-V conductivity

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

Cu-Se-HHS rod device · Single Crystal · Drop-cast rods or Cu-S-HHS plates on Si/SiO2, PMMA/EBL patterning, Ti/Au contacts; resistance used when voltage drop unavailable.

Electrical TransportFour contact

four-probe pressed-pellet conductivity

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

Cu-Te-HHS pressed pellet · Pellet · 20 mg MOF powder pressed in 8 mm die for 5 min at 20 MPa; four-point linear probe spacing 1.2 mm; variable T 80-350 K.

Electrical TransportUnspecified subtype

two-/four-electrode single-crystal I-V conductivity

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

Cu-Te-HHS rod device · Single Crystal · Drop-cast rods or Cu-S-HHS plates on Si/SiO2, PMMA/EBL patterning, Ti/Au contacts; resistance used when voltage drop unavailable.

Electrical TransportUnspecified subtype

Solution conductivity measurement

2025 · Enhancing pancreatic cancer ablation efficiency: bipolar IRE with conductive MOF

Ni3(HITP)2@PDA nanoparticles · Powder · Conductivity of Ni3(HITP)2@PDA aqueous dispersions at increasing concentration, read from Fig. 2i.

Electrical TransportUnspecified subtype

Solution conductivity measurement

2025 · Enhancing pancreatic cancer ablation efficiency: bipolar IRE with conductive MOF

Purchased Ni3(HITP)2 powder · Powder · Conductivity of aqueous dispersions of Ni3(HITP)2 and Ni3(HITP)2@PDA at 0-1000 ug/mL, read from SI Fig. S14.

Electrical TransportFour contact

Four-probe electrical conductivity

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

Ni-tdc-bpe pressed pellet · Pellet · ST2722-SD/ST2255; pellet pressure 2-30 MPa

Electrical TransportFour contact

Four-probe electrical conductivity

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

Ni-tdc-bpe(0.5) pressed pellet · Pellet · ST2722-SD/ST2255; pellet pressure 2-30 MPa

Electrical TransportFour contact

Four-probe electrical conductivity

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

Ni-tdc-bpy pressed pellet · Pellet · Electrical resistance measuring system ST2722-SD/ST2255; pellet pressure 2-30 MPa

Electrical TransportFour contact

Four-probe electrical conductivity

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

Ni-tdc-bpy(0.5) pressed pellet · Pellet · ST2722-SD/ST2255; pellet pressure 2-30 MPa

Electrical TransportUnspecified subtype

Time-resolved microwave conductivity (TRMC), 355 nm Nd:YAG excitation

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

MW_x KGF-9/KGF-17 comparison powder series · Powder · Sample on adhesive tape; 5-8 ns pulse, 10 Hz, I0 = 9.1e15 photons cm-2 pulse-1, microwave frequency ca. 9 GHz, power ca. 3 mW.

Electrical TransportUnspecified subtype

ionic liquid viscosity and conductivity measurement

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

[EMIM][BF4]/PVDF-HFP gel electrolyte · Unknown · Pure [EMIM][BF4] measured; gel electrolyte prepared with organic solvent reported to have decreased viscosity.

Electrical TransportUnspecified subtype

Cyclic bending test with electrical-conductivity retention

2025 · Flexible conductive metal-organic framework Cu3(HHTP)2 film with high thermoelectric performance for low-grade heat harvesting

Optimised Cu3(HHTP)2/Nylon bending-test film · Thin Film · Film strips bent around a 6 mm diameter rod; conductivity ratio sigma/sigma0 tracked with bending cycles.

ThermoelectricFour contact

ZEM-3 standard four-probe thermoelectric measurement

2025 · Flexible conductive metal-organic framework Cu3(HHTP)2 film with high thermoelectric performance for low-grade heat harvesting

Cu3(HHTP)2 pellet · Pellet · Temperature-dependent thermoelectric measurement of cold-isostatic Cu3(HHTP)2 pellet, with room-temperature PF reported in main text and plotted SI data read approximately from Fig. S3.

Electrical TransportUnspecified subtype

I-V measurement with two Ag electrodes

2025 · From Rigid to Flexible: Ce-BTC-MOF-Enabled Self-Powered Photodetectors with Record-High Responsivity and Detectivity

Optimised 320 nm Ce-BTC thin film · Thin Film · Ag/Ce-BTC contact check in SI Figure S4.

Electrical TransportFour contact

Hall effect measurements in van der Pauw configuration

2025 · From Rigid to Flexible: Ce-BTC-MOF-Enabled Self-Powered Photodetectors with Record-High Responsivity and Detectivity

Ce-BTC thin films on glass, thickness series · Thin Film · Sheet resistance, Hall mobility and carrier concentration measured at room temperature for Ce-BTC films of different thicknesses.

Electrical TransportFour contact

Four-probe electrical conductivity

2025 · High-resolution structure of Zn3(HOTP)2 (HOTP = hexaoxidotriphenylene), a three-dimensional conductive MOF

Zn3(HOTP)2 pellets pressed under 3, 6, and 9 tons for four-probe conductivity · Pellet · Pressed pellets measured as a function of applied pressing pressure at 3, 6, and 9 tons.

Electrical TransportTwo contact

Two-contact probe conductivity

2025 · High-resolution structure of Zn3(HOTP)2 (HOTP = hexaoxidotriphenylene), a three-dimensional conductive MOF

Polycrystalline pressed pellet of Zn3(HOTP)2 for two-contact probe conductivity · Pellet · Home-built two-probe in situ press set-up; linear I-V sweep from -1 to +1 V; Keithley 2450 source meter and Keithley 8608 test leads; ambient atmosphere.

Electrical TransportTwo contact

DC two-point I-V conductivity on interdigitated Au electrodes

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HI12)2 film on interdigitated Au electrodes · Thin Film · air at room temperature and 22% RH in dark; Keithley 236; film conductivities calculated from R, gap width 5 um, electrode length 6.76 mm and 499 gaps

Electrical TransportTwo contact

DC two-point I-V conductivity on interdigitated Au electrodes

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HI18)2 film on interdigitated Au electrodes · Thin Film · air at room temperature and 22% RH in dark; Keithley 236; film conductivities calculated from R, gap width 5 um, electrode length 6.76 mm and 499 gaps

Electrical TransportTwo contact

DC two-point I-V conductivity on interdigitated Au electrodes

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HITP)2 film on interdigitated Au electrodes · Thin Film · air at room temperature and 22% RH in dark; Keithley 236; film conductivities calculated from R, gap width 5 um, electrode length 6.76 mm and 499 gaps

Electrical TransportTwo contact

DC two-point probe pellet conductivity

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HI12)2 pressed pellet · Pellet · air at room temperature and 30% RH; Keithley 2401; pellet cross-sectional area 0.385 cm2

Electrical TransportTwo contact

DC two-point probe pellet conductivity

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HI18)2 pressed pellet · Pellet · air at room temperature and 30% RH; Keithley 2401; pellet cross-sectional area 0.385 cm2

Electrical TransportTwo contact

DC two-point probe pellet conductivity

2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks

Ni3(HITP)2 pressed pellet · Pellet · air at room temperature and 30% RH; Keithley 2401; pellet cross-sectional area 0.385 cm2

Electrical TransportUnspecified subtype

qualitative classification; no first-hand conductivity measurement

2025 · Highly sensitive electrochemiluminescence glucose sensor under alkaline conditions based on glucose oxidase@conductive metal-organic framework nanocapsules

Zn-HHTP framework component in GOx@Zn-HHTP · Unknown · Paper identifies the carrier as a conductive MOF nanocapsule and cites prior conductive-MOF work; no conductivity value is reported for this sample.

Electrical TransportTwo contact

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.

Electrical TransportUnspecified subtype

inferred conductivity evidence from Raman, XPS/XAS and EIS

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

Co-MOF-74-HATP powder · Powder · No standalone conductivity measurement geometry or numeric conductivity is reported; authors infer improved conductivity from HATP electronic effects, graphitisation and lower electrochemical charge resistance.

Electrical TransportFour contact

Four-probe bulk electrical conductivity on pressed powder pellet

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

Pressed pellet of Cu3(HHTP)(DHBQ)1.5/1.53 powder · Pellet · RMS-1000 temperature resistance tester; pressed pellet area 30 mm2, thickness 0.2 mm; conductivity measured from 10 to 80 deg C.

Electrical TransportFour contact

Four-point probe method

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

Ni-HITP nanoparticles (Ni-HITP NPs) · Powder · Powder conductivity measured at 30 MPa.

Electrical TransportFour contact

Four-point probe method

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

Ni-HITP nanosheets (Ni-HITP NSs) · Nanosheet · Powder conductivity measured at 30 MPa.

Electrical TransportTwo contact

PEIS two-probe pressed-pellet conductivity

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

H12-Al2-(DOBDP)3.12H2O (_h) powder · Powder · Hydrated Al-MOF measured at 293 K and 31% RH; proton conductivity reported, electronic conductivity absent/not detected.

Electrical TransportTwo contact

PEIS two-probe pressed-pellet conductivity

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

H12-Al2-(DOBDP)3.8H2O (_ph) · Powder · Partially hydrated Al-MOF measured at 293 K and 31% RH; proton conductivity reported.

Electrical TransportTwo contact

PEIS and dc I-V two-probe pressed-pellet conductivity

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

H12-Fe2-(DOBDP)3.12H2O (_h) powder · Powder · 40 mg powder pellet, 7 mm diameter, cold pressed at 2 T between carbon-coated aluminium foils; PEIS 7 MHz to 10 mHz, 200 mV; 293 K and 31% RH.

Electrical TransportFour contact

four-probe conductivity

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

I2@FeTHQ, 20 C 6 h · Powder · Four-probe method on ST-2258C; comparison with 3D MOF literature

Electrical TransportUnspecified subtype

conductivity under repeated bending

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

I2@FeTHQ/FP paper sensor · Thin Film · Electrical conductivity tracked over 0-300 bending cycles

Electrical TransportUnspecified subtype

single-crystal DC I-V conductivity measurement

2025 · Morphological control of a metal-organic framework for single-crystal electronic device fabrication

H4TTFTB single crystals · Single Crystal · 10 H4TTFTB crystals measured; representative I-V and conductivity distribution reported in Fig. S15

Electrical TransportTwo contact

two-contact DC I-V conductivity measurement

2025 · Morphological control of a metal-organic framework for single-crystal electronic device fabrication

Zn-9 two-contact single-crystal electronic device · Electrode · Voltage scanned -0.1 to 0.1 V in 1 mV steps using Keithley 2636B; 15 devices

Electrical TransportUnspecified subtype

pressed-pellet DC I-V conductivity measurement

2025 · Morphological control of a metal-organic framework for single-crystal electronic device fabrication

pressed pellet of Zn-9 · Pellet · Home-built pressed pellet instrument; 0.3 cm diameter, 0.31 cm thickness; Keithley 4200A-SCS; I-V at 297 K

Electrical TransportFour contact

four-point probe electrical conductivity

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

as-synthesised Ni-COF powder/precipitate · Powder · room-temperature four-point probe method

Electrochemistry ApplicationUnspecified subtype

separator ionic conductivity by EIS

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

Ni-COF@PP composite separator · Thin Film · electrolyte-soaked SS | separator | SS cells, EIS 10^6 to 0.01 Hz

Electrochemistry ApplicationUnspecified subtype

separator ionic conductivity by EIS

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

commercial PP separator control · Thin Film · electrolyte-soaked SS | separator | SS cells, EIS 10^6 to 0.01 Hz

Electrical TransportUnspecified subtype

Dark current-voltage measurement

2025 · Multilevel Chiral Semiconductor Metal-Peptide Framework Thin Film for Highly Circularly Polarized Visible Photodetection

CAS-4 thin film-based Au photodetector · Electrode · Dark I-V curve of CAS-4 photodetector device; voltage swept to 10 V.

Electrical TransportFour contact

Hall effect measurement, van der Waals/four-point probe mode

2025 · Multilevel Chiral Semiconductor Metal-Peptide Framework Thin Film for Highly Circularly Polarized Visible Photodetection

Highly oriented CAS-4 thin film grown for 20 LPE-LBL cycles · Thin Film · Lake Shore M91; DC field Hall effect; start/end source voltage 1/-1 V; excitation source voltage 1 V; magnetic field 800 mT; sample dimensions 10 x 10 mm2 with silver paste contacts.

Electrical TransportUnspecified subtype

Unpolarised light photoresponse and I-V

2025 · Multilevel Chiral Semiconductor Metal-Peptide Framework Thin Film for Highly Circularly Polarized Visible Photodetection

CAS-4 thin film-based Au photodetector · Electrode · CAS-4 thin-film device under unpolarised light; wavelength scan 200-800 nm and I-V under 600 nm illumination at 77.82 uW cm^-2.

Electrical TransportFour contact

four-point probe conductivity

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

Cu-HATC pressed pellet · Pellet · Pressed pellet under identical conditions to Ni-HATC

Electrical TransportFour contact

four-point probe conductivity

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

Cu-HHTC pressed pellet · Pellet · Pressed pellet structural analog comparison

Electrical TransportFour contact

four-point probe conductivity

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

Ni-HATC pressed pellet · Pellet · Pressed pellet; approximately 5 mg in 5 mm die under 1.5 tons; no binder/additive

Electrical TransportVariable temperature

variable-temperature conductivity

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

Ni-HATC pressed pellet · Pellet · Temperature-dependent four-point-probe conductivity profile of pressed pellet; exact points only plotted

Electrical TransportFour contact

four-point probe conductivity

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

Ni-HATC thin film on glass · Thin Film · Thin film; no binder or conducting additive; thickness by surface profilometer

Electrical TransportTwo contact

Two-point probe electronic conductivity from EIS-fitted resistance

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

Fe-HHTP powder pellet in Swagelok two-probe cell · Pellet · Fe-HHTP powder between stainless steel current collectors of Swagelok cell; EIS 1e6 to 1e-2 Hz; 1 V applied; 226 MPa pressure; Randles equivalent circuit; sigma = l/(R*A).

Electrical TransportTwo contact

Two-probe DC resistance in air

2025 · Photoactivated conductive MOF thin film arrays on micro-LEDs for chemiresistive gas sensing

CuHHTP-5C · Thin Film · Non-emissive sensors measured in gas-sensing chamber; dry air stabilisation; DAQ970A multimeter.

Electrical TransportFour contact

Four-point probe conductivity measurement

2025 · Promoting electromagnetic wave absorption for conductive metal-organic frameworks through crystal morphology controlling

Ni-TABQ-1 black crystalline powder · Powder · Conductivity of as-prepared Ni-TABQ-1 sample.

Electrical TransportFour contact

Four-point probe conductivity measurement

2025 · Promoting electromagnetic wave absorption for conductive metal-organic frameworks through crystal morphology controlling

Ni-TABQ-2 black powder · Powder · Conductivity of as-prepared Ni-TABQ-2 sample.

Electrical TransportFour contact

Four-probe electrochemical impedance spectroscopy

2025 · Proton Conductive Metal-Organic Framework Encapsulating Emissive Hexacyanidochromate(III) Ions for Ratiometric and Lifetime-Based Detection of Humidity and Temperature

1a proton-conductivity pellet with Au contacts · Pellet · Nyquist plots for 1a pellet at 25 C under 90% and 95% RH; BioLogic MTZ-35, 10 MHz-0.1 Hz, 100 mV amplitude.

Electrical TransportFour contact

Four-point probe DC conductivity

2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer

Ni-BAND thin film · Thin Film · Ambient conditions; 25 C and 50% RH.

Electrochemistry ApplicationTwo contact

Two-probe current-voltage sweeps on gel memristor

2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer

Ni-BAND gel memristor device · Electrode · I-V under ambient/humidified and dry Ar conditions; sweep range -30 V to 30 V for pinched hysteresis.

Electrical TransportUnspecified subtype

Two-electrode current-voltage measurement

2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer

Ni-BAND thin-film Au-electrode device · Electrode · +/-2 V range on Ni-BAND film on SiO2/Si substrate with Au electrodes.

Electrical TransportUnspecified subtype

Arrhenius analysis of proton conductivity

2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer

Ni-BAND thin-film Au-electrode device · Electrode · Arrhenius plot of proton conductivity; linear fit follows Nernst-Einstein equation.

Electrical TransportUnspecified subtype

Electrical conductivity test

2025 · Rational Design of Conductive MOF-Based Diatomic Electrocatalysts for Selective Ammonia Synthesis

Cu99Ni1-DBCO · Powder · Conditions not specified in SI table; reported as bulk sample conductivity.

Electrical TransportUnspecified subtype

DC I-V and EIS on pressed pellets

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

Pressed pellet of Cd2(TTFTB) · Pellet · Pressed pellets measured at 298 K in humid air; I-V -0.1 to 0.1 V; EIS 8 kHz to 0.1 Hz.

Electrical TransportUnspecified subtype

DC I-V and AC electrochemical impedance spectroscopy

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

Cd2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · I-V from -0.1 to 0.1 V; EIS AC amplitude 500 mV; atmospheres humid N2, dry N2, humid air, dry air; room temperature.

Electrical TransportVariable temperature

Variable-temperature I-V and EIS; Arrhenius activation energy fitting

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

Cd2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · 293 to 353 K with 5 or 10 K steps in humid N2 then dry N2; each temperature held 30 min; Ea fitted from DC conductivity-temperature relation.

Electrical TransportUnspecified subtype

DC I-V and EIS on pressed pellets

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

Pressed pellet of Co2(TTFTB) · Pellet · Pressed pellets measured at 298 K in humid air; I-V -0.1 to 0.1 V; EIS 8 kHz to 0.1 Hz.

Electrical TransportUnspecified subtype

DC I-V and AC electrochemical impedance spectroscopy

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

Co2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · I-V from -0.1 to 0.1 V; EIS AC amplitude 500 mV; atmospheres humid N2, dry N2, humid air, dry air; room temperature.

Electrical TransportVariable temperature

Variable-temperature I-V and EIS; Arrhenius activation energy fitting

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

Co2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · 293 to 353 K with 5 or 10 K steps in humid N2 then dry N2; each temperature held 30 min; Ea fitted from DC conductivity-temperature relation.

Electrical TransportUnspecified subtype

DC I-V and EIS on pressed pellets

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

Pressed pellet of Mn2(TTFTB) · Pellet · Pressed pellets measured at 298 K in humid air; I-V -0.1 to 0.1 V; EIS 8 kHz to 0.1 Hz.

Electrical TransportUnspecified subtype

DC I-V and AC electrochemical impedance spectroscopy

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

Mn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · I-V from -0.1 to 0.1 V; EIS AC amplitude 500 mV; atmospheres humid N2, dry N2, humid air, dry air; room temperature.

Electrical TransportVariable temperature

Variable-temperature I-V and EIS; Arrhenius activation energy fitting

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

Mn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · 293 to 353 K with 5 or 10 K steps in humid N2 then dry N2; each temperature held 30 min; Ea fitted from DC conductivity-temperature relation.

Electrical TransportUnspecified subtype

DC I-V and EIS on pressed pellets

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

Pressed pellet of Mn2(TTFTB) · Pellet · Pressed pellets measured at 298 K in humid air; I-V -0.1 to 0.1 V; EIS 8 kHz to 0.1 Hz.

Electrical TransportUnspecified subtype

DC I-V and AC electrochemical impedance spectroscopy

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

Mn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · I-V from -0.1 to 0.1 V; EIS AC amplitude 500 mV; atmospheres humid N2, dry N2, humid air, dry air; room temperature.

Electrical TransportVariable temperature

Variable-temperature I-V and EIS; Arrhenius activation energy fitting

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

Mn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · 293 to 353 K with 5 or 10 K steps in humid N2 then dry N2; each temperature held 30 min; Ea fitted from DC conductivity-temperature relation.

Electrical TransportUnspecified subtype

DC I-V and EIS on pressed pellets

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

Pressed pellet of Zn2(TTFTB) · Pellet · Pressed pellets measured at 298 K in humid air; I-V -0.1 to 0.1 V; EIS 8 kHz to 0.1 Hz.

Electrical TransportUnspecified subtype

I-V and EIS on sputtered Pt electrode devices

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

Zn2(TTFTB) micro/nanofabricated single-crystal device with sputtered Pt electrodes · Single Crystal · Humid air at 298 K; Pt electrodes intended to block proton conduction and interfacial redox reactions.

Electrical TransportUnspecified subtype

DC I-V and AC electrochemical impedance spectroscopy

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

Zn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · I-V from -0.1 to 0.1 V; EIS AC amplitude 500 mV; atmospheres humid N2, dry N2, humid air, dry air; room temperature.

Electrical TransportVariable temperature

Variable-temperature I-V and EIS; Arrhenius activation energy fitting

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

Zn2(TTFTB) single-crystal two-contact device with Au wires/carbon paste · Single Crystal · 293 to 353 K with 5 or 10 K steps in humid N2 then dry N2; each temperature held 30 min; Ea fitted from DC conductivity-temperature relation.

Electrical TransportFour contact

Four-point probe conductivity

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

Ag4TSHQ pressed pellet · Pellet · Pressed pellet; temperature controlled by CTI Cryogenics refrigerator; ambient-temperature value highlighted.

Electrical TransportFour contact

Four-probe conductivity on pressed pellet samples

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

Ag4TXHQ-1:1 powder · Powder · Temperature-dependent conductivity for Ag4TXHQ species, Figure S10.

Electrical TransportTwo contact

Two-contact current-voltage measurement on pressed pellet

2025 · Semiconducting Manganese-Bipyridyl Coordination Polymer via a Manganese-Metal-Nanoparticle Approach

Pressed pellet of purified 1 · Pellet · Current-voltage characteristic measured from 2.5 to 16.5 V at room temperature inside a glovebox after manually separated crystals were rinsed, dried, mortared, and pressed.

Electrical TransportTwo contact

Two-probe current-voltage and Schottky diode analysis

2025 · Structure-directing effect of terephthalate in bridging Zn(ii)- and Cd(ii)-based coordination polymers towards application in the detection of trace quantities of Pd2+ in aqueous media and their electrical conductivities

ITO/CP1/Al Schottky diode · Thin Film · ITO/CP1/Al measured using Keithley 2635B at room temperature (303 K), applied bias +/-1 V under dark conditions; Al deposited at 10^-6 Torr through shadow mask.

Electrical TransportTwo contact

Two-probe current-voltage and Schottky diode analysis

2025 · Structure-directing effect of terephthalate in bridging Zn(ii)- and Cd(ii)-based coordination polymers towards application in the detection of trace quantities of Pd2+ in aqueous media and their electrical conductivities

ITO/CP2/Al Schottky diode · Thin Film · ITO/CP2/Al measured using Keithley 2635B at room temperature (303 K), applied bias +/-1 V under dark conditions; Al deposited at 10^-6 Torr through shadow mask.

Electrical TransportUnspecified subtype

Electrical conductivity measurement of fabricated composite hydrogels

2025 · Tuning the dxy Orbital Energy Level in 2D Cobalt-Organic-Framework via in-Plane Conjugated Phthalocyanine for Self-Powered Sensing

2D MOF@Pc/DNH · Unknown · Comparison of 3D MOF/DNH, 3D MOF@Pc/DNH, 2D MOF/DNH and 2D MOF@Pc/DNH; method details not specified beyond conductivity reporting.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF1 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF2 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF3 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF4 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF5 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF6 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF7 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF8 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity after guest removal

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

Guest-removed d-MOF9 · Powder · Guest-removed d-MOF pellet measured at 25 deg C under 60% humidity.

Electrical TransportUnspecified subtype

Current-voltage curves

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF1-MOF9 bulk series · Powder · I-V curves for MOF1-MOF9 recorded at 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF1 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportVariable temperature

Temperature-dependent current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF1 · Powder · Representative I-V measurements at 30, 40 and 50 deg C; activation energy tabulated.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF2 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF3 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportVariable temperature

Temperature-dependent current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF3 · Powder · Representative I-V measurements at 30, 40 and 50 deg C; activation energy tabulated.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF4 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF5 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF6 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF7 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF8 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportVariable temperature

Temperature-dependent current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF8 · Powder · Representative I-V measurements at 30, 40 and 50 deg C; activation energy tabulated.

Electrical TransportFour contact

Four-probe current-voltage conductivity

2025 · Tuning the Electrical Conductivity of Bimetallic Co–Mn-Based MOFs via Precisely Regulating the Atomic Content of Metal Centers and Study on Their Dye Adsorption Properties

As-synthesised MOF9 · Powder · Keithley 2450 source meter; pellets 1.3 cm diameter and 2 mm thick; 25 deg C under 60% humidity.

Electrical TransportFour contact

Four-contact probe DC conductivity on pressed pellet

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Cu pressed pellet · Pellet · 25-30 mg samples pressed into 6 x 6 mm pellets for 10 min at about 800 psi; four 25 um Au wire contacts with carbon paste; room-temperature conductivity from three synthetic batches.

Electrical TransportFour contact

Four-contact probe DC conductivity on pressed pellet

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc(OH)8 pressed pellet · Pellet · Same pelletised four-contact probe method as MOF samples; room-temperature value reported in Table S8.

Electrical TransportFour contact

Four-contact probe DC conductivity on pressed pellet

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Ni pressed pellet · Pellet · 25-30 mg samples pressed into 6 x 6 mm pellets for 10 min at about 800 psi; four 25 um Au wire contacts with carbon paste; room-temperature conductivity from three synthetic batches.

Electrical TransportFour contact

Four-contact probe DC conductivity on pressed pellet

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Zn pressed pellet · Pellet · 25-30 mg samples pressed into 6 x 6 mm pellets for 10 min at about 800 psi; four 25 um Au wire contacts with carbon paste; room-temperature conductivity from three synthetic batches.

Electrical TransportFour contactVariable temperature

Variable-temperature four-contact probe DC conductivity

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Cu pressed pellet · Pellet · Measured in Quantum Design PPMS Dynacool liquid He cryostat; temperature varied from 300 K to 180 K at 2.5 K min-1; resistance measured every 2.5 K; Arrhenius fit for activation energy.

Electrical TransportFour contactVariable temperature

Variable-temperature four-contact probe DC conductivity

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Ni pressed pellet · Pellet · Measured in Quantum Design PPMS Dynacool liquid He cryostat; temperature varied from 300 K to 180 K at 2.5 K min-1; resistance measured every 2.5 K; Arrhenius fit for activation energy.

Electrical TransportFour contactVariable temperature

Variable-temperature four-contact probe DC conductivity

2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages

CuPc-O-Zn pressed pellet · Pellet · Measured in Quantum Design PPMS Dynacool liquid He cryostat; temperature varied from 300 K to 180 K at 2.5 K min-1; resistance measured every 2.5 K; Arrhenius fit for activation energy.

Electrical TransportTwo contact

two-probe I-V conductivity

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

Cu-DDQP pellet for two-probe conductivity · Pellet · Keithley 4200-SCS source meter; voltage sweep -1.0 to 1.0 V at room temperature.

Electrical TransportTwo contact

two-probe I-V conductivity

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

Cu-TBPQ pellet for two-probe conductivity · Pellet · Keithley 4200-SCS source meter; voltage sweep -1.0 to 1.0 V at room temperature.

Electrical TransportTwo contact

two-probe I-V conductivity

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

Cu-TTPQ pellet for two-probe conductivity · Pellet · Keithley 4200-SCS source meter; voltage sweep -1.0 to 1.0 V at room temperature.

Electrical TransportUnspecified subtype

Two-terminal I-V of composite catalyst

2025 · Two-dimensional conductive metal-organic framework with 2,3,6,7,14,15-triptycenehexathiol (TCHT) ligand: synthesis, structure, electrical conductivity and CO2RR activity

Cu-TCHT@Maxsorb · Electrode · Electrical conductivity of Cu-TCHT and Cu-BHT loaded on Maxsorb; plotted current versus voltage.

Electrical TransportTwo contact

Two-probe electrical conductivity

2025 · Two-dimensional conductive metal-organic framework with 2,3,6,7,14,15-triptycenehexathiol (TCHT) ligand: synthesis, structure, electrical conductivity and CO2RR activity

Cu-TCHT Sample A · Pellet · Compressed pellet, 3 mm-diameter pellet mould, Agilent E5291A SMU/E5260A mainframe; measured at 20 deg C.

Electrical TransportTwo contact

Two-probe electrical conductivity

2025 · Two-dimensional conductive metal-organic framework with 2,3,6,7,14,15-triptycenehexathiol (TCHT) ligand: synthesis, structure, electrical conductivity and CO2RR activity

Cu-TCHT Sample B · Pellet · Compressed pellet, measured in Ar-filled glovebox.

Electrical TransportTwo contact

Two-probe electrical conductivity

2025 · Two-dimensional conductive metal-organic framework with 2,3,6,7,14,15-triptycenehexathiol (TCHT) ligand: synthesis, structure, electrical conductivity and CO2RR activity

Cu-TCHT Sample C · Pellet · Compressed pellet after vacuum activation at 120 deg C for 24 h; measured in glovebox.

Electrical TransportTwo contact

Two-probe electrical conductivity

2025 · Two-dimensional conductive metal-organic framework with 2,3,6,7,14,15-triptycenehexathiol (TCHT) ligand: synthesis, structure, electrical conductivity and CO2RR activity

Cu-TCHT Sample D · Pellet · Compressed pellet after one day air exposure.

Electrical TransportFour contact

Four-point electrical conductivity with AC bridge and I-V ohmic-contact check.

2025 · Uninterrupted π-d Conjugated Three-Dimensional Conductive Metal-Organic Framework

Rectangular Ni3HBC pellet for electrical and thermal transport · Pellet · High-vacuum cryostat (10^-6 torr); voltage difference measured between copper thermocouple wires while applying AC current through side wires; representative I-V curve measured by four-point probe.

Electrical TransportUnspecified subtype

AC conductivity from complex impedance analysis

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

Co-BTC cold-pressed pellet · Pellet · Graphite paste contacts; vacuum 10^-7 bar; HP 4284L LCR meter; 10 kHz to 500 kHz.

Electrical TransportUnspecified subtype

AC conductivity from complex impedance analysis

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

Mn-BTC cold-pressed pellet · Pellet · Conductive graphite paste contacts on opposite pellet faces; ARS cryostat evacuated to 10^-7 bar; HP 4284L LCR meter; 10 kHz to 500 kHz.

Electrical TransportUnspecified subtype

AC conductivity from complex impedance analysis

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

1:2 Mn:Co cold-pressed pellet · Pellet · Graphite paste contacts; vacuum 10^-7 bar; HP 4284L LCR meter; 10 kHz to 500 kHz.

Electrical TransportUnspecified subtype

Four-terminal longitudinal conductivity

2025 · Unveiling high-mobility hot carriers in a two-dimensional conjugated coordination polymer

large-area Cu3BHT film on fused silica · Thin Film · Commercial Physical Property Measurement System; AC lock-in method at 17.777 Hz using Stanford Research System 830 lock-in amplifier source meter; variable temperature 2-300 K.

Electrical TransportFour contact

four-probe conductivity on pressed-powder pellet

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

Cu-TOC black powder / pressed pellet · Powder · Pressed pellet measured from 298 K to 403 K using a Keithley 2002 multimeter.

Electrical TransportFour contact

four-probe conductivity on pressed-powder pellet

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

Mn-TOC black powder / pressed pellet · Powder · Pressed pellet measured from 298 K to 403 K using a Keithley 2002 multimeter.

Electrical TransportFour contact

four-probe conductivity on pressed-powder pellet

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

Zn-TOC black powder / pressed pellet · Powder · Pressed pellet measured from 298 K to 403 K using a Keithley 2002 multimeter.

Electrical TransportFour contact

micro four-point probe (M4PP)

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 · Electrical conductivity of Fe-HHTP determined by M4PP; pressure dependence plotted in Fig. 2C.

Electrical TransportUnspecified subtype

Repeated H+ dedoping/doping conductivity cycling

2024 · Acid-Dependent Charge Transport in a Solution-Processed 2D Conductive Metal-Organic Framework

Cu3(HHTATP)2 proton-doped spin-coated thin film · Thin Film · Three cycles of proton removal and proton doping on a Cu3(HHTATP)2 thin film; PXRD checked after cycling.

Electrical TransportFour contact

Four-point probe conductivity on spin-coated films

2024 · Acid-Dependent Charge Transport in a Solution-Processed 2D Conductive Metal-Organic Framework

Cu3(HHTATP)2 proton-doped spin-coated thin film · Thin Film · Cr/Au electrodes with 30 um spacing; film conductivity calculated using sigma = (dI/dV) x ln2/(pi t).

Electrical TransportFour contact

Four-point probe conductivity on pressed pellets

2024 · Acid-Dependent Charge Transport in a Solution-Processed 2D Conductive Metal-Organic Framework

Cu3(HHTATP)2 rod pellet device · Pellet · Powders pressed at approximately 0.37 GPa for 10 min; Cr/Au 5/95 nm electrodes; pellet probe spacing 50 um.

ThermoelectricFour contact

Room-temperature four-probe conductivity and Seebeck coefficient

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

Ni3(THT)2 pressed pellet for four-probe and Seebeck measurements · Pellet · custom probe station in argon glovebox; forward and reverse Seebeck scans; geometry correction for conductivity and Seebeck

Electrical TransportUnspecified subtype

Cheung's method analysis of I-V data

2024 · Chromone-Based Cd(II) Fluorescent Coordination Polymer Fabricated to Study Optoelectronic and Explosive Sensing Properties

CSD1 thin-film Schottky device from CP1 · Thin Film · Ideality factor, barrier height and series resistance extracted from dV/dlnI vs I and H(I) vs I plots under dark and light.

Electrical TransportTwo contact

Two-probe current-voltage (I-V) control measurements

2024 · Chromone-Based Cd(II) Fluorescent Coordination Polymer Fabricated to Study Optoelectronic and Explosive Sensing Properties

Bare ITO control · Electrode · Bare ITO, LSD1 and LSD2 measured under dark and light in same +/-2 V range.

Electrical TransportFour contact

Four-point probe electrical conductivity

2024 · Conductive Metal-Organic Framework with Superior Redox Activity as a Stable High-Capacity Anode for High-Temperature K-Ion Batteries

pressed HAN-Cu-MOF pellet · Pellet · 100 mg powder pressed into 10 mm pellet at 2-30 MPa for 15 s; measured around 298 K

Electrical TransportFour contactVariable temperature

parallel four-probe temperature-dependent conductivity

2024 · Control of the Hydroquinone/Benzoquinone Redox State in High-Mobility Semiconducting Conjugated Coordination Polymers

pressed Ag4TTBQ pellet with gold electrodes · Pellet · Pellet measured on a Lake Shore Hall system in closed highly evacuated dark chamber; constant current 100 mA; 10-400 K; conductivity fitted with thermal activation plus variable-range hopping.

Electrical TransportFour contactVariable temperature

parallel four-probe temperature-dependent conductivity

2024 · Control of the Hydroquinone/Benzoquinone Redox State in High-Mobility Semiconducting Conjugated Coordination Polymers

pressed Ag4TTHQ pellet with gold electrodes · Pellet · Pellet measured on a Lake Shore Hall system in closed highly evacuated dark chamber; constant current 100 mA; 10-400 K; conductivity fitted with thermal activation plus variable-range hopping.

Electrical TransportUnspecified subtype

conductivity versus air-exposure time

2024 · Controlling Film Formation and Host-Guest Interactions to Enhance the Thermoelectric Properties of Nickel-Nitrogen-Based 2D Conjugated Coordination Polymers

as-synthesised Ni-HATI-Me film · Thin Film · Conductivity monitored during exposure of films to ambient air.

Computational ModellingUnspecified subtype

heterogeneous transport model fit to conductivity-temperature data

2024 · Controlling Film Formation and Host-Guest Interactions to Enhance the Thermoelectric Properties of Nickel-Nitrogen-Based 2D Conjugated Coordination Polymers

annealed Ni-HATP film · Thin Film · Fit decomposes Ni-HATP conductivity into hopping and disordered metallic grain-boundary pathways, with and without electron-electron interaction.

Electrical TransportFour contactTwo contact

2-probe and 4-probe conductivity measurements in synthesis screen

2024 · Controlling Film Formation and Host-Guest Interactions to Enhance the Thermoelectric Properties of Nickel-Nitrogen-Based 2D Conjugated Coordination Polymers

Ni-HAB synthesis-screening products · Thin Film · Electrical conductivities of Ni-HAB films from Table S1 screening conditions.

Electrical TransportFour contact

four-point-probe electrical conductivity

2024 · Controlling Film Formation and Host-Guest Interactions to Enhance the Thermoelectric Properties of Nickel-Nitrogen-Based 2D Conjugated Coordination Polymers

annealed Ni-HAB film · Thin Film · Ni-HAB film after annealing in N2.

ThermoelectricVariable temperature

temperature-dependent conductivity and Seebeck coefficient under high vacuum

2024 · Controlling Film Formation and Host-Guest Interactions to Enhance the Thermoelectric Properties of Nickel-Nitrogen-Based 2D Conjugated Coordination Polymers

annealed Ni-HATP film · Thin Film · Annealed Ni-HATP films measured from about 100 to 300 K; used to test hopping, SLoT, Zabrodskii, and heterogeneous transport models.

Electrical TransportTwo contact

two-probe bulk electrical conductivity on powder pellet

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

Cu-DCB-MOF powder pellet · Pellet · Keithley 4200 semiconductor analyser; pellets pressed at about 1 GPa, gold wires and silver paste contacts.

Electrical TransportTwo contact

two-probe bulk electrical conductivity on powder pellet

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

Cu-DCBBT-MOF powder pellet · Pellet · Keithley 4200 semiconductor analyser; pellets pressed at about 1 GPa, gold wires and silver paste contacts.

Electrical TransportTwo contact

two-probe bulk electrical conductivity on powder pellet

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

Cu-DCBT-MOF powder pellet · Pellet · Keithley 4200 semiconductor analyser; pellets pressed at about 1 GPa, gold wires and silver paste contacts.

Electrical TransportTwo contactVariable temperature

variable-temperature two-probe conductivity

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

Cu-DCB-MOF powder pellet · Pellet · Conductivity measured from 303 to 348 K for the three biscarbazole-based 2D c-MOF pellets.

Electrical TransportFour contact

four-point probe conductivity

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

as-synthesised Cu3(HHTP)2 powder · Powder · Conductivity of conductive MOF measured by SourceMeter; supporting four-point probe I-V curves in SI Figure S2.

Electrical TransportTwo contact

Two-probe electrical conductivity using PPMS

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

all Cu-doping-ratio powders · Powder · Compressed pellets; temperature-dependent conductivity for 30, 50, 75, 90, 95, and 100% Cu; 0 and 5% classified as band insulators.

Electrical TransportFour contact

linear four-point probe conductivity

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

Bu-MOF pressed pellet · Pellet · Pressed pellets measured at room temperature under ambient atmosphere using Keithley 2450 source-meter and Keithley 2182A voltmeter.

Electrical TransportFour contact

linear four-point probe conductivity

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

Et-MOF pressed pellet · Pellet · Pressed pellets measured at room temperature under ambient atmosphere using Keithley 2450 source-meter and Keithley 2182A voltmeter.

Electrical TransportFour contact

linear four-point probe conductivity

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

H-MOF pressed pellet · Pellet · Pressed pellets measured at room temperature under ambient atmosphere using Keithley 2450 source-meter and Keithley 2182A voltmeter.

Electrical TransportFour contact

linear four-point probe conductivity

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

Pent-MOF pressed pellet · Pellet · Pressed pellets measured at room temperature under ambient atmosphere using Keithley 2450 source-meter and Keithley 2182A voltmeter.

Electrical TransportFour contact

Four-point probe conductivity

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

Solvothermal bulk Ni-HHTP powder/pellet · Pellet · Pressed circular pellet, 5 mm diameter, 1.5 tons pressure; Keithley SCS-4200 parameter analyser.

Electrical TransportFour contact

Four-point probe conductivity

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

Detached Ni-HHTP-Disc powder/pellet · Pellet · Detached electrosynthesised material pressed into 5 mm pellet under 1.5 tons.

Electrical TransportFour contact

Four-point probe conductivity

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

Detached Ni-HHTP-Flower powder/pellet · Pellet · Detached electrosynthesised material pressed into 5 mm pellet under 1.5 tons.

Electrical TransportUnspecified subtype

electrical conductivity-temperature curve

2024 · Enhancement of the performance of Ge–air batteries under high temperatures using conductive MOF-modified Ge anodes

bare Ge anode · Electrode · Bare Ge conductivity comparator in Figure 5C.

Electrical TransportUnspecified subtype

electrical conductivity-temperature curve

2024 · Enhancement of the performance of Ge–air batteries under high temperatures using conductive MOF-modified Ge anodes

Ge@Ni3(HITP)2 anode · Electrode · Conductivity of Ge@Ni3(HITP)2 and bare Ge as a function of temperature; values read from Figure 5C.

Electrical TransportUnspecified subtype

conductivity normalised by IEC

2024 · Enhancing Proton Conductivity and Dimensional Stability of Nanofiber Proton Exchange Membranes through In Situ Growth of MOF-Modified PVDF Nanofibers

A-PVDF-N@Nafion · Thin Film · sigma/IEC calculated from reported 80 C proton conductivity and Figure 5b IEC

Electrical TransportUnspecified subtype

conductivity normalised by IEC

2024 · Enhancing Proton Conductivity and Dimensional Stability of Nanofiber Proton Exchange Membranes through In Situ Growth of MOF-Modified PVDF Nanofibers

A-PVDF@Nafion · Thin Film · sigma/IEC calculated from reported 80 C proton conductivity and Figure 5b IEC

Electrical TransportUnspecified subtype

conductivity normalised by IEC

2024 · Enhancing Proton Conductivity and Dimensional Stability of Nanofiber Proton Exchange Membranes through In Situ Growth of MOF-Modified PVDF Nanofibers

A-PVDF-NS@Nafion · Thin Film · sigma/IEC calculated from reported 80 C proton conductivity and Figure 5b IEC

Electrical TransportUnspecified subtype

conductivity normalised by IEC

2024 · Enhancing Proton Conductivity and Dimensional Stability of Nanofiber Proton Exchange Membranes through In Situ Growth of MOF-Modified PVDF Nanofibers

Nafion · Thin Film · sigma/IEC calculated from reported 80 C proton conductivity and Figure 5b IEC

Electrical TransportUnspecified subtype

conductivity normalised by IEC

2024 · Enhancing Proton Conductivity and Dimensional Stability of Nanofiber Proton Exchange Membranes through In Situ Growth of MOF-Modified PVDF Nanofibers

PVDF@Nafion · Thin Film · sigma/IEC calculated from reported 80 C proton conductivity and Figure 5b IEC

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

H4TCNQ@Cu-MOF-74 pellet · Pellet · Room-temperature IV curve for H4TCNQ@Cu-MOF-74.

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

H4TCNQ@Mg-MOF-74 pellet · Pellet · Room-temperature IV curve for H4TCNQ@Mg-MOF-74.

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

H4TCNQ@Mn-MOF-74 pellet · Pellet · Room-temperature IV curve for H4TCNQ@Mn-MOF-74.

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

H4TCNQ@Zn-MOF-74 pellet · Pellet · Room-temperature IV curve for H4TCNQ@Zn-MOF-74.

Electrical TransportTwo contactVariable temperature

Temperature-dependent two-point probe electrical transport

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

TCNQ@Cu-MOF-74 pellet · Pellet · Argon-filled glovebox (<1 ppm O2) using Gamry PCI4750-333041 potentiostat; powder pressed into pellet with 3 tons force for 2 min using 50 mg material, 0.5 mm thickness; measured 294-353 K.

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

TCNQ@Mg-MOF-74 pellet · Pellet · Room-temperature IV curves shown in Fig. S5; main text also states no detectable conductivity as temperature increased.

Electrical TransportUnspecified subtype

IV/conductivity control measurement

2024 · From insulator to semiconductor: effect of host-guest interactions on charge transport in M-MOF-74 metal-organic frameworks

TCNQ@Zn-MOF-74 pellet · Pellet · Room-temperature IV curves shown in Fig. S5; main text also states no detectable conductivity as temperature increased.

Electrical TransportFour contact

four-point probe conductivity

2024 · High-Performance H2S Sensors to Detect SF6 Leakage

Co1.8Ni1.2(HITP)2 powder · Powder · Resistance measured with source meter and converted to conductivity.

Electrical TransportFour contact

four-point probe conductivity

2024 · High-Performance H2S Sensors to Detect SF6 Leakage

Co3(HITP)2 powder · Powder · Resistance measured with source meter and converted to conductivity.

Electrical TransportFour contact

four-point probe conductivity

2024 · High-Performance H2S Sensors to Detect SF6 Leakage

Ni3(HITP)2 powder · Powder · Resistance measured with source meter and converted to conductivity using sigma = L/(R*A).

Diffraction StructureUnspecified subtype

X-ray diffraction (Ultima IV, Cu K alpha)

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

NiCAT powder · Powder · 20 kV, 30 mA; NiCAT powder compared with TOW membrane and 50%-NiCAT@TOW.

Diffraction StructureUnspecified subtype

X-ray diffraction (Ultima IV, Cu K alpha)

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 · XRD pattern of 50%-NiCAT@TOW membrane used to confirm NiCAT integration with cellulose crystalline faces.

Electrical TransportTwo contact

two-probe pressed-pellet conductivity

2024 · Layered coordination polymer with two-dimensional covalent bismuth-organic networks: Semiconductor and lithium ion storage

pressed Bi-DSBDC-DMA pellet for conductivity · Pellet · 0.18 mm pressed pellet between two stainless steel rods in a homemade holder; Keithley 2400 source meter; conductivity measured at different temperatures.

Electrical TransportFour contact

four-point probe bulk conductivity

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

pressed Cu-EP pellet · Pellet · Pressed pellet under ambient conditions; approximately 5 mg in 5 mm die under 1.5 Tons; no binder or conducting additive

Electrical TransportFour contact

four-point probe conductivity of metalated pellets

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

Cu-EP-Cs-0.5 · Powder · Conductivity variations of pristine Cu-EP and Cs metalated samples; Table S11 gives pristine, CsNO3 low-dose and CsOAc samples; Figure 5B shows trend with Cs occupancy

Electrical TransportFour contact

four-point probe bulk conductivity

2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF

pressed Cu-HHTC pellet · Pellet · Pressed pellet comparison value reported for Cu-HHTC in Table S4

Electrical TransportFour contact

Four-point probe conductivity

2024 · Molecular-Level Pore Tuning in 2D Conductive Metal-Organic Frameworks for Advanced Supercapacitor Performance

Cu3(HHTATP)2 pellet with Cr/Au four-point contacts · Pellet · Pellet thickness >1.0 mm, diameter 10 mm; Cr/Au contacts; probe spacing 50 um; room temperature.

Electrical TransportUnspecified subtype

I-V comparison for amine-doped NDI(CPOH)2-SCs

2024 · Naphthalene Diimide-Based Hydrogen-Bonded Organic Framework for High Electrical Conductivity and Ammonia Sensor Applications

ammonia-doped NDI(CPOH)2-SC sensor device · Single Crystal · Figure S16 compares pristine, hydrazine, ammonia, triethylamine, and diethylamine treatments

Electrical TransportTwo contact

two-probe I-V; SMU B1500A

2024 · Naphthalene Diimide-Based Hydrogen-Bonded Organic Framework for High Electrical Conductivity and Ammonia Sensor Applications

Device A pristine drop-cast NDI(CPOH)2-SC · Single Crystal · vacuum 10^-3 Pa, dark, gap-type device; C60/Au or Au electrodes on single crystal

Electrical TransportTwo contact

two-probe I-V; SMU B1500A

2024 · Naphthalene Diimide-Based Hydrogen-Bonded Organic Framework for High Electrical Conductivity and Ammonia Sensor Applications

Device B hydrazine-doped NDI(CPOH)2-SC, normal treatment · Single Crystal · vacuum 10^-3 Pa, dark, hydrazine-doped normal-treated SC device

Electrical TransportVariable temperature

temperature-dependent I-V

2024 · Naphthalene Diimide-Based Hydrogen-Bonded Organic Framework for High Electrical Conductivity and Ammonia Sensor Applications

Device B hydrazine-doped NDI(CPOH)2-SC, normal treatment · Single Crystal · Device A measured from 303 to 263 K; Device B measured from 303 to 173 K

Electrical TransportUnspecified subtype

Mettler Toledo S230 SevenCompact conductivity meter

2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors

bulk [Bmim][PF6]/ACN electrolyte ratio series · Unknown · Room-temperature conductivity of [Bmim][PF6]/ACN mixtures with different nIL:nsol ratios after sealed-vessel homogenisation.

Electrical TransportUnspecified subtype

MD-derived in-pore ionic conductivity

2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors

MD model: Ni3(HITP)2 supercapacitor with [Bmim][PF6]/ACN · Model · In-pore conductivity for nIL:nsol = 0.05, 0.107 and 0.2 under a cell voltage of 2 V, extracted from charging curves/transmission-line analysis.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2024 · Photocatalytic Hydrogen Peroxide Production through Functionalized Semiconductive Metal-Organic Frameworks

DPT-MOF pressed pellet · Pellet · Pressed pellet measured under vacuum at 20 C; temperature-dependent conductivity fitted from 293-333 K.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2024 · Photocatalytic Hydrogen Peroxide Production through Functionalized Semiconductive Metal-Organic Frameworks

EFB-MOF pressed pellet · Pellet · Pressed pellet measured under vacuum at 20 C; temperature-dependent conductivity fitted from 293-333 K.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2024 · Photocatalytic Hydrogen Peroxide Production through Functionalized Semiconductive Metal-Organic Frameworks

PA-MOF pressed pellet · Pellet · Pressed pellet measured under vacuum at 20 C; temperature-dependent conductivity fitted from 293-333 K.

Electrical TransportFour contact

four-probe conductivity

2024 · Redox-active conductive metal-organic framework with high lithium capacities at low temperatures

SKIER-5 cyan solid powder · Powder · Measured at room temperature by CMT-SR2000N under appropriate pressure without paste

Electrical TransportUnspecified subtype

electrical conductivity

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 · Conductivity values summarised for Fe-THQ, Ni0.5Fe0.5-THQ and Ni-THQ; device geometry not specified.

Electrical TransportUnspecified subtype

Post-recycling tensile and conductivity testing

2024 · Reversible Molecule Interactions Enable Ultrastretchable and Recyclable Ionogels for Wearable Piezoionic Sensors

recycled ionogel · Thin Film · Recycled ionogels compared before and after solvent remoulding with DMAC.

Electrical TransportTwo contact

Two-point probe bulk conductivity on pressed pellet

2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units

Ni3(HITP)2 pressed pellet · Pellet · 10-20 mg pressed at 1500 psi; 3 mm probe spacing; 6 mm pellet diameter; I/V slope from V-I scan.

Electrical TransportTwo contact

Two-point probe bulk conductivity on pressed pellet

2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units

Ni(DIB)2 pressed pellet · Pellet · Same pellet preparation and equation as Ni3(HITP)2 conductivity measurement.

Electrical TransportFour contact

four-contact probe conductivity

2024 · Superior Charge Transport in Ni-Diamine Conductive MOFs

Pressed pellet four-probe device of pristine Cu3(HITT)2 · Pellet · Pressed polycrystalline pellet; measured at ambient/room temperature in four-contact geometry.

Electrical TransportFour contact

four-contact probe conductivity

2024 · Superior Charge Transport in Ni-Diamine Conductive MOFs

Pressed pellet four-probe device of Ni3(HITT)2 · Pellet · Pressed polycrystalline pellet; measured at 298 K in main text / 296 K in SI methods, ambient atmosphere, dark-covered probe station.

Electrical TransportFour contactVariable temperature

variable-temperature four-contact conductivity / Arrhenius fit

2024 · Superior Charge Transport in Ni-Diamine Conductive MOFs

Pressed pellet four-probe device of pristine Cu3(HITT)2 · Pellet · PPMS DynaCool Electrical Transport Option; two heating/cooling cycles between 300 K and 100 or 200 K at 5 K/min; resistance every 1 K.

Electrical TransportFour contactTwo contact

Room-temperature two-probe and four-probe I-V measurement

2024 · Synthesis and structure of a non-van-der-Waals two-dimensional coordination polymer with superconductivity

Cu3BHT single-crystal four-probe device · Electrode · Out-of-plane I-V curves from Cu3BHT single-crystal device at room temperature.

Electrical TransportFour contact

Low-temperature four-contact superconductivity transport

2024 · Synthesis and structure of a non-van-der-Waals two-dimensional coordination polymer with superconductivity

Cu3BHT single-crystal four-probe device · Electrode · Quantum Design PPMS DynaCool with Electrical Transport Option; 0.05-1 K; magnetic field 0-1 T applied along ab plane and supercurrent along c-axis.

Electrical TransportFour contactVariable temperature

Four-probe temperature-dependent resistivity and conductivity

2024 · Synthesis and structure of a non-van-der-Waals two-dimensional coordination polymer with superconductivity

Cu3BHT single-crystal four-probe device · Electrode · Variable-temperature single-crystal device measurements from 2 to 300 K using attoDRY 2100 with SR830 lock-in amplifier.

Electrical TransportFour contact

parallel-electrode current-voltage and four-probe electrical conductivity

2024 · Synthesis of a highly conductive coordination polymer film via a vapor-solid phase chemical conversion process

Ag5BHT thin films · Thin Film · I-V curve of a 270 nm Ag5BHT thin film at 300 K; electrical conductivities with different thicknesses measured using parallel electrodes and four probes connected by conductive silver paste.

Electrical TransportFour contactVariable temperature

variable-temperature four-probe conductance

2024 · Synthesis of a highly conductive coordination polymer film via a vapor-solid phase chemical conversion process

Ag5BHT thin films · Thin Film · Conductivity of a 270 nm Ag5BHT film measured from 300 to 400 K; ln sigma versus T^-1 used for activation energy.

Electrical TransportTwo contact

two-contact probe electrical transport, linear I-V

2024 · Synthesis of Stable 2D Conductive Lanthanide Organic Frameworks (Lu-HHTP) for High-Performance Humidity Sensors

Pressed Lu-HHTP pellet · Pellet · Pressed pellet measured at 302 K using a home-built two-point probe setup; powder compressed between copper nails under 0.4 GPa; voltage generally swept between -2 and +2 V

Electrical TransportFour contact

Four-point probe bulk conductivity

2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance

Co-DHHBTN pressed pellet · Pellet · Pressed pellet, 30 mg, 6 mm die, 1000 psi, 5 min; tip spacing 1.2 mm; thickness 0.3 mm; variable T 220-370 K.

Electrical TransportFour contact

Four-point probe bulk conductivity

2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance

Cu-DHHBTN pressed pellet · Pellet · Pressed pellet, 30 mg, 6 mm die, 1000 psi, 5 min; tip spacing 1.2 mm; thickness 0.3 mm; variable T 220-370 K.

Electrical TransportFour contact

Four-point probe bulk conductivity

2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance

Ni-DHHBTN pressed pellet · Pellet · Pressed pellet, 30 mg, 6 mm die, 1000 psi, 5 min; tip spacing 1.2 mm; thickness 0.3 mm; variable T 220-370 K.

Electrical TransportUnspecified subtype

Current-voltage sweep

2024 · Two-Dimensional Electrically Conductive Metal-Organic Framework Boosts Synaptic Plasticity for Dynamic Image Refresh, Classification, and Efferent Neuromuscular Systems

EC-MOF-L-AS lithium electrolyte artificial synapse · Electrode · I-V curves in the range of +/-5 V for the first ten laps.

Electrical TransportFour contact

Four-probe electrical conductivity

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPE pressed pellet · Pellet · CTA-3 Cryoall electrical resistance measuring system; room temperature; 10 mm pellet pressed at 100 MPa

Electrical TransportFour contact

Four-probe electrical conductivity

2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance

Ni-BPY pressed pellet · Pellet · CTA-3 Cryoall electrical resistance measuring system; room temperature; 10 mm pellet pressed at 100 MPa

Electrical TransportUnspecified subtype

Electronic conductivity measurement

2024 · Vertical Conductive Metal–Organic Framework Single-Crystalline Nanowire Arrays for Efficient Electrocatalytic Hydrogen Evolution

Ag-MOF-Film · Thin Film · Current-voltage curve of Ag-MOF-Film; resistance 28 ohm, surface area 4 x 10-4 cm-2 and film thickness 200 nm used for sigma = L/(R S).

Electrical TransportFour contact

Four-point probe electrical conductivity

2023 · 2D conjugated metal-organic framework as a proton-electron dual conductor

Pressed Zn-HHTP-H2O pellet · Pellet · Pressed pellet; ambient 293 K 30% RH, 95% RH, and 343 K 95% RH; temperature-dependent conductivity under vacuum for activation energy.

Electrical TransportFour contact

Four-point probe electrical conductivity

2023 · 2D conjugated metal-organic framework as a proton-electron dual conductor

Pressed Zn-HHTP-urea pellet · Pellet · Pressed pellet; ambient 293 K 30% RH, 293 K 95% RH, and 343 K 95% RH.

Electrical TransportTwo contact

Two-probe electrical conductivity measurement

2023 · A chiral SrSi2 (srs) superstructure constructed by a dual interaction system showing isotropic electrical conductivity

Pellet of compound 1 · Pellet · Keithley 2400 parameter analyser; pellet of compound 1 measured at 300 K; voltage swept from -5 V to +5 V.

Electrical TransportTwo contact

two-probe I-V curve

2023 · A Humidity-Induced Large Electronic Conductivity Change of 107 on a Metal-Organic Framework for Highly Sensitive Water Detection

Drop-cast H2SO4@(NH2)2-MIL-125 humidity sensor · Electrode · Current-voltage curve under 5 percent RH at room temperature

Electrical TransportUnspecified subtype

conductivity (literature-referenced)

2023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation

Ni3(HITP)2 powder · Powder · Conductivity value cited for Ni3(HITP)2 HCMOF; measurement method not reported in this work.

Electrical TransportTwo contact

Two-probe powder-pellet electrical conductivity

2023 · A Pyrazine-Based 2D Conductive Metal-Organic Framework for Efficient Lithium Storage†

TPQG-Cu-MOF powder pellet for conductivity · Pellet · Keithley 4200 semiconductor analyser; pellets pressed at about 1 GPa and contacted with gold wires and silver paste.

Electrical TransportUnspecified subtype

Optical-characterisation-derived electrical conductivity and thin-film parameters

2023 · A simplistic approach for the synthesis of Covalent Organic Frameworks(COFs) comprising of tetrafunctionalized porphyrin and polyoxometalates to uncover catalytic applications

ITO/TiO2/P@Cu-AndCOF thin-film electrode · Electrode · ITO/TiO2/P@Cu-AndCOF film; conductivity derived from optical conductance equations S7 and S8; indirect band gap from Tauc plot.

Electrical TransportUnspecified subtype

Optical-characterisation-derived electrical conductivity and thin-film parameters

2023 · A simplistic approach for the synthesis of Covalent Organic Frameworks(COFs) comprising of tetrafunctionalized porphyrin and polyoxometalates to uncover catalytic applications

ITO/TiO2/P@Ni-AndCOF thin-film electrode · Electrode · ITO/TiO2/P@Ni-AndCOF film; conductivity derived from optical conductance equations S7 and S8; indirect band gap from Tauc plot.

Electrical TransportTwo contact

Two-probe conductivity

2023 · A tribenzocoronene-based 2D conductive metal-organic framework for efficient energy storage

pressed Cu-TBC pellet · Pellet · Keithley 4200-SCS; gold wires fixed to sample side with silver colloid; voltage sweep -1.0 to 1.0 V; pressed pellet

Electrical TransportFour contact

Four-point probe electrical conductivity

2023 · A Triptycene-Based 2D MOF with Vertically Extended Structure for Improving the Electrocatalytic Performance of CO2 to Methane

2D-vc-MOF(Cu) pressed pellets · Pellet · Pressed pellets measured at 298 K and 45% relative humidity after pressing at 2-20 MPa for 30 s.

Electrical TransportUnspecified subtype

Planar current-voltage measurement with Keithley 2401

2023 · Air/liquid interfacial formation process of conductive metal–organic framework nanosheets

HITP-Ni-NS_1 min · Nanosheet · HITP-Ni-NS deposited onto SiO2(100 nm)/Si substrates with five deposition cycles at pi = 5 mN m-1; Au stripe electrodes by vacuum evaporation; measurements in dark.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Por(Co)-MOF · Powder · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity

Vg-MOF · Powder · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

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 · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

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 · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

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 · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportTwo contact

pressed-pellet two-contact probe I-V

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 · MOF powder pressed in 6 mm die for 5 min at approximately 1000 psi; conductivity measured in air by two-contact probe.

Electrical TransportUnspecified subtype

Current-voltage measurement

2023 · Chemical Vapor Deposition and High-Resolution Patterning of a Highly Conductive Two-Dimensional Coordination Polymer Film

20 nm CVD Cu-BHT nanofilm · Thin Film · I-V curve measured at 300 K to check Ohmic contacts.

Electrical TransportFour contactVariable temperature

Variable-temperature van der Pauw conductivity measurement

2023 · Chemical Vapor Deposition and High-Resolution Patterning of a Highly Conductive Two-Dimensional Coordination Polymer Film

CVD Cu-BHT nanofilm series · Thin Film · Lakeshore Hall System 9700A; Ag paste and silver wires on Cu-BHT film on Si/SiO2; contacts confirmed Ohmic by I-V curves.

Electrical TransportTwo contact

Two-probe I-V conductivity measurement

2023 · Chemiresistive and chem-FET Sensor: π-d conjugated metal-organic framework for ultra-sensitive and selective carbon monoxide detection

as-synthesised Zn-HHTP blue powder · Powder · I-V characteristics shown for Zn-HHTP

Electrical TransportTwo contact

In situ DC electrical resistivity/conductivity, two-probe

2023 · CO2-Sensitive Porous Magnet: Antiferromagnet Creation from a Paramagnetic Charge-Transfer Layered Metal-Organic Framework

Pelletized compound 1 for DC conductivity · Pellet · Pellet of compound 1 between stainless-steel plates; dried under high vacuum <1e-2 Pa at 353 K for 5 h; measured under controlled CO2 pressure using 0.1 V source and 1 K min-1 temperature sweep.

Electrical TransportTwo contact

two-probe I-V control

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

blank device fabricated without MOF crystal · Electrode · blank device without crystals, same fabrication manner

Electrical TransportTwo contact

two-probe I-V conductivity

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Gd4-MOF single-crystal two-probe device, a-axis aligned · Electrode · voltage applied across a-axis, perpendicular to 1D conductive aromatic wire

Electrical TransportTwo contact

two-probe I-V conductivity

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Gd4-MOF single-crystal two-probe device, c-axis aligned · Electrode · room temperature, 50% relative humidity; more than 50 devices

Electrical TransportTwo contact

two-probe conductivity after pH soaking

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Gd4-MOF single-crystal two-probe device, c-axis aligned · Electrode · Ln4-MOF crystals soaked at different pH values for 12 h, then conductivity along c-axis measured

Electrical TransportUnspecified subtype

in situ conductivity at 100 C

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Gd4-MOF single-crystal two-probe device, c-axis aligned · Electrode · devices heated under air and moisture during test for 10 h

Electrical TransportTwo contact

two-probe I-V conductivity

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Lu4-MOF single-crystal two-probe device, c-axis aligned · Electrode · room temperature, 50% relative humidity

Electrical TransportTwo contact

two-probe I-V conductivity

2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability

Tm4-MOF single-crystal two-probe device, c-axis aligned · Electrode · room temperature, 50% relative humidity

Electrical TransportFour contact

four-probe electrical conductivity

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 · Room-temperature four-probe conductivity at 10 mA and 45% humidity; values reported for MIL-47 material and MIL-47/CNT interlayer, with CNT film described as comparable.

Electrical TransportFour contactVariable temperature

temperature-dependent four-contact in-plane conductivity

2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes

MWM-1 (Co/2Ni) conductivity pellet · Pellet · cold-isostatically pressed 20-40 um pellet; four-arm Lakeshore probe station; vacuum ca. 10^-4 Pa; Keithley 4200 SCS; Au contacts

Electrical TransportTwo contact

Two-probe electrical conductivity

2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction

c-HBC-12O-Cu pellet · Pellet · Bulk polycrystalline pellet; Keithley 4200-SCS; room-temperature conductivity; temperature-dependent measurements from 303 to 348 K also reported.

Electrical TransportTwo contact

Two-probe electrical conductivity

2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction

c-HBC-6O-Cu pellet · Pellet · Bulk polycrystalline pellet; Keithley 4200-SCS; room-temperature conductivity; temperature-dependent measurements from 303 to 348 K also reported.

Electrical TransportTwo contact

Two-probe electrical conductivity

2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction

c-HBC-8O-Cu pellet · Pellet · Bulk polycrystalline pellet; Keithley 4200-SCS; room-temperature conductivity; temperature-dependent measurements from 303 to 348 K also reported.

Electrical TransportUnspecified subtype

A.C. impedance conductivity

2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides

Ti-dobdc-LiBr (MOF:LiBr = 1:3) · Pellet · Humidity-dependent conductivity for higher MOF:LiBr molar ratios; reported at 298 K and 30% RH.

Electrical TransportUnspecified subtype

A.C. impedance conductivity

2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides

Ti-dobdc-LiBr (MOF:LiBr = 1:5) · Pellet · Humidity-dependent conductivity for higher MOF:LiBr molar ratios; reported at 298 K and 30% RH.

Electrical TransportUnspecified subtype

Current-voltage Schottky diode analysis and Cheung method

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/1/Al Schottky thin-film device · Thin Film · ITO/1/Al thin-film device under dark and light conditions; bias range +/-1.5 V.

Electrical TransportUnspecified subtype

Current-voltage Schottky diode analysis and Cheung method

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/2/Al Schottky thin-film device · Thin Film · ITO/2/Al thin-film device under dark and light conditions; bias range +/-1.5 V.

Electrical TransportUnspecified subtype

Current-voltage Schottky diode analysis and Cheung method

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/3/Al Schottky thin-film device · Thin Film · ITO/3/Al thin-film device under dark and light conditions; bias range +/-1.5 V.

Electrical TransportUnspecified subtype

SCLC analysis of forward-bias I-V characteristics

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/1/Al Schottky thin-film device · Thin Film · Charge transport parameters from I vs V2, capacitance-frequency and ln I vs ln V analyses.

Electrical TransportUnspecified subtype

SCLC analysis of forward-bias I-V characteristics

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/2/Al Schottky thin-film device · Thin Film · Charge transport parameters from I vs V2, capacitance-frequency and ln I vs ln V analyses.

Electrical TransportUnspecified subtype

SCLC analysis of forward-bias I-V characteristics

2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers

ITO/3/Al Schottky thin-film device · Thin Film · Charge transport parameters from I vs V2, capacitance-frequency and ln I vs ln V analyses.

Electrical TransportUnspecified subtype

FIB-assisted conductivity measurement

2023 · Dimensional Control of Highly Anisotropic and Transparent Conductive Coordination Polymers for Solution-Processable Large-Scale 2D Sheets

1D CuCl-TU polymer nanowire · Powder · Nanowire measured along and perpendicular to its principal axis.

Electrical TransportUnspecified subtype

FIB-assisted conductivity measurement

2023 · Dimensional Control of Highly Anisotropic and Transparent Conductive Coordination Polymers for Solution-Processable Large-Scale 2D Sheets

2D CuCl-TU nanosheet on Si/SiO2 wafer with Au pads · Electrode · Micrometer-scale nanosheet measured along two orthogonal axes.

Electrical TransportUnspecified subtype

I-V characteristics under dark and light radiation

2023 · Double advantages of 2D coordination polymer of coumarinyl-pyridyl Schiff base decorated Zn(II): The fabrication of Schottky device and Anti-carcinogenic activity

ITO/Zn(II)-CP/Al Schottky diode thin film · Thin Film · ITO/Zn(II)-CP/Al Schottky barrier diode; conductivity, rectification ratio and diode parameters extracted under dark/light conditions.

Electrical TransportTwo contact

Two-contact pressed-pellet conductivity

2023 · Electrically conductive [Fe4S4]-based organometallic polymers

(PPh4)2(Fe4S4Cl4) pressed-pellet control · Pellet · Room-temperature pressed-pellet method, reported as this-work control in Table S1.

Electrical TransportFour contact

Four-probe conductivity

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N9H3O3)2 MOF pressed pellet · Pellet · Pellet pressed at 20 MPa; conductivity calculated from sheet resistance and thickness.

Electrical TransportFour contact

Four-probe conductivity

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N12H6)2 MOF pressed pellet · Pellet · Pellet pressed at 20 MPa; conductivity calculated from sheet resistance and thickness.

Electrical TransportFour contact

Four-probe conductivity, DFP-02 Basic Model

2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands

Pt3(C12N6O6)2 MOF pressed pellet · Pellet · Pellet pressed at 20 MPa; conductivity calculated as 1/(R x t).

Electrical TransportVariable temperature

Temperature-dependent conductivity Arrhenius analysis

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

Supramolecular [HATP/HCTP]n array powder/crystals · Powder · Temperature-dependent I-V plots and Arrhenius plot for the supramolecular array.

Electrical TransportTwo contact

Two-probe I-V on pressed material

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

Supramolecular [HATP/HCTP]n array powder/crystals · Powder · Ambient pressed-pellet conductivity comparison.

Electrical TransportTwo contact

Two-probe I-V on pressed pellet

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

Post-synthetically HCTP-treated Cu3(HATP)2 · Powder · Ambient conductivity of post-synthetically HCTP-treated Cu3(HATP)2.

Electrical TransportUnspecified subtype

Representative I-V plot on pressed pellet

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

Cu3(HATP)2 formed in the presence of pyrene · Pellet · Cu3(HATP)2 formed in the presence of equimolar pyrene.

Electrical TransportUnspecified subtype

Representative I-V plot on pressed pellet

2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks

Cu3(HATP)2 formed in the presence of triphenylene · Pellet · Cu3(HATP)2 formed in the presence of equimolar triphenylene.

Electrical TransportUnspecified subtype

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 TransportUnspecified subtype

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.

Electrical TransportUnspecified subtype

Electrochemical impedance spectroscopy-derived 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 · Thin films preconditioned at desired applied potentials for 2 min by chronoamperometry; EIS with 10 mV AC modulation from 0.1 to 10000 Hz in Ar-saturated DMF with 0.1 M KPF6; resistance from RC equivalent circuit converted to conductivity by Ohm's law.

Electrical TransportUnspecified subtype

Repeated redox-conductivity switching by EIS

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 · Redox conductivity switched between x = 0.0 and x = 0.5 over 100 cycles, about 24 h operation.

Electrical TransportUnspecified subtype

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.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers

pressed-pellet 1D-CuTABQ · Pellet · Pressed pellet; sigma calculated as G L/A from conductance, pellet length and cross-sectional area

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers

pressed-pellet 2D-CuTABQ · Pellet · Pressed pellet; sigma calculated as G L/A from conductance, pellet length and cross-sectional area

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P1.0-10C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P1.0-20C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P1.0-5C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P2.0-10C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P2.0-20C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P2.0-5C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P0.1-10C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P0.1-20C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P0.1-40C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu0.1 P0.1-5C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu1.0 P0.1-10C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu1.0 P0.1-20C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu1.0 P0.1-40C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportUnspecified subtype

linear I-V conductivity

2023 · Growth mechanisms and anisotropic softness-dependent conductivity of orientation-controllable metal-organic framework nanofilms

Cu1.0 P0.1-5C · Thin Film · Electronic conductivity parallel to substrate from Os patterned electrodes in air at room temperature.

Electrical TransportFour contact

Four-point probe conductivity

2023 · Hierarchical conductive metal-organic framework films enabling efficient interfacial mass transfer

Zn-HHTP-H film on Si/SiO2 · Thin Film · Electrical conductivity of different c-MOF plates measured at room temperature.

Electrical TransportVariable temperature

Arrhenius/temperature-dependent conductivity analysis

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Co-F as-synthesised pressed pellet · Pellet · Activation energy of charge mobility derived from conductivity changes with temperature; SI Fig. S6 shows ln sigma versus 1/T plots

Electrical TransportTwo contact

Two-probe I-V conductivity using Keithley 2400 source meter

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Co-F as-synthesised pressed pellet · Pellet · As-synthesised pressed pellet; ca. 30 C and 60% humidity; current-voltage curve recorded, conductivity calculated from pellet/probe geometry

Electrical TransportTwo contactVariable temperature

Temperature-dependent two-probe I-V conductivity

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Co-F as-synthesised pressed pellet · Pellet · Conductivity measured over 30-60 C; Table 2 reports maximum conductivity and corresponding temperature

Electrical TransportTwo contact

Two-probe conductivity after thermal guest removal

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

d-Co-F deguested pressed pellet · Pellet · Deguested sample measured at 30 C after heating as-synthesised MOF at 160 C for 24 h

Electrical TransportTwo contact

Two-probe conductivity after thermal guest removal

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

d-Mn-F deguested pressed pellet · Pellet · Deguested sample measured at 30 C after heating as-synthesised MOF at 160 C for 24 h

Electrical TransportTwo contact

Two-probe conductivity after thermal guest removal

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

d-Ni-F deguested pressed pellet · Pellet · Deguested sample measured at 30 C after heating as-synthesised MOF at 160 C for 24 h

Electrical TransportTwo contact

Two-probe conductivity after thermal guest removal

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

d-Zn-F deguested pressed pellet · Pellet · Deguested sample measured at 30 C after heating as-synthesised MOF at 160 C for 24 h

Electrical TransportVariable temperature

Arrhenius/temperature-dependent conductivity analysis

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Mn-F as-synthesised pressed pellet · Pellet · Activation energy of charge mobility derived from conductivity changes with temperature; SI Fig. S6 shows ln sigma versus 1/T plots

Electrical TransportTwo contact

Two-probe I-V conductivity using Keithley 2400 source meter

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Mn-F as-synthesised pressed pellet · Pellet · As-synthesised pressed pellet; ca. 30 C and 60% humidity; current-voltage curve recorded, conductivity calculated from pellet/probe geometry

Electrical TransportTwo contactVariable temperature

Temperature-dependent two-probe I-V conductivity

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Mn-F as-synthesised pressed pellet · Pellet · Conductivity measured over 30-60 C; Table 2 reports maximum conductivity and corresponding temperature

Electrical TransportVariable temperature

Arrhenius/temperature-dependent conductivity analysis

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Ni-F as-synthesised pressed pellet · Pellet · Activation energy of charge mobility derived from conductivity changes with temperature; SI Fig. S6 shows ln sigma versus 1/T plots

Electrical TransportTwo contact

Two-probe I-V conductivity using Keithley 2400 source meter

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Ni-F as-synthesised pressed pellet · Pellet · As-synthesised pressed pellet; ca. 30 C and 60% humidity; current-voltage curve recorded, conductivity calculated from pellet/probe geometry

Electrical TransportTwo contactVariable temperature

Temperature-dependent two-probe I-V conductivity

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Ni-F as-synthesised pressed pellet · Pellet · Conductivity measured over 30-60 C; Table 2 reports maximum conductivity and corresponding temperature

Electrical TransportVariable temperature

Arrhenius/temperature-dependent conductivity analysis

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Zn-F as-synthesised pressed pellet · Pellet · Activation energy of charge mobility derived from conductivity changes with temperature; SI Fig. S6 shows ln sigma versus 1/T plots

Electrical TransportTwo contact

Two-probe I-V conductivity using Keithley 2400 source meter

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Zn-F as-synthesised pressed pellet · Pellet · As-synthesised pressed pellet; ca. 30 C and 60% humidity; current-voltage curve recorded, conductivity calculated from pellet/probe geometry

Electrical TransportTwo contactVariable temperature

Temperature-dependent two-probe I-V conductivity

2023 · Highly conductive three-dimensional metal organic frameworks from small in situ generated ligands

Zn-F as-synthesised pressed pellet · Pellet · Conductivity measured over 30-60 C; Table 2 reports maximum conductivity and corresponding temperature

Electrical TransportTwo contact

Two-probe current-density-voltage (J-V) measurement using Keithley 2635B; Cheung analysis of Schottky diode parameters

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

Al/compound 1/ITO thin-film metal-semiconductor device · Thin Film · Room temperature (303 K), dark ambient condition; Al/compound/ITO metal-semiconductor device; effective area 7.065 x 10-6 m2; film thickness 1 micrometre.

Electrical TransportTwo contactVariable temperature

temperature-dependent two-probe conductivity and Arrhenius analysis

2023 · Iodine uptake enhanced electrical conductivity by a metal-organic framework bearing nanotube array of π-stacked columns

desolvated 1 pellet · Pellet · I-V curves swept from 0 to +1 V with a temperature step of 10 K; SI Fig. S10 legends show 300-370 K; activation energy extracted from log(sigma)-1/T fit

Electrical TransportUnspecified subtype

Arrhenius analysis of EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.5@MOF (0.5:1) · Pellet · Activation energy calculated from the slope of ln(sigma) versus inverse temperature; figure reports fitted activation energies for IL@MOF, IL0.8@MOF, IL0.6@MOF and IL0.5@MOF

Electrical TransportUnspecified subtype

AC complex impedance spectroscopy / EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.5@MOF (0.5:1) · Pellet · Plane-parallel pellet sample; Solartron 1260; 0.01 to 10^6 Hz; 10 mV; room temperature to 80 deg C; 1 h equilibration at each temperature; ZView 3.0 fitting

Electrical TransportUnspecified subtype

AC complex impedance spectroscopy / EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.6@MOF (0.6:1) · Pellet · Plane-parallel pellet sample; Solartron 1260; 0.01 to 10^6 Hz; 10 mV; room temperature to 80 deg C; 1 h equilibration at each temperature; ZView 3.0 fitting

Electrical TransportUnspecified subtype

AC complex impedance spectroscopy / EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL0.8@MOF (0.8:1) · Pellet · Plane-parallel pellet sample; Solartron 1260; 0.01 to 10^6 Hz; 10 mV; room temperature to 80 deg C; 1 h equilibration at each temperature; ZView 3.0 fitting

Electrical TransportUnspecified subtype

AC complex impedance spectroscopy / EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

IL@MOF (1:1) · Pellet · Plane-parallel pellet sample; Solartron 1260; 0.01 to 10^6 Hz; 10 mV; room temperature to 80 deg C; 1 h equilibration at each temperature; ZView 3.0 fitting

Electrical TransportUnspecified subtype

AC complex impedance spectroscopy / EIS ionic conductivity

2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries

Zn-MOF-74 powder · Powder · Plane-parallel pellet sample; Solartron 1260 Impedance Analyzer; 0.01 to 10^6 Hz; 10 mV signal amplitude; room temperature to 80 deg C; 1 h equilibration at each temperature; ZView 3.0 fitting

Electrical TransportFour contactVariable temperature

Four-probe I-V and temperature-dependent conductivity

2023 · Ligand-Oxidation-Based Anodic Synthesis of Oriented Films of Conductive M-Catecholate Metal-Organic Frameworks with Controllable Thickness

~100 nm Cu3(HHTP)2 four-probe device on silica · Thin Film · I-V curves recorded under vacuum (~10^-5 mbar) over 100-300 K; conductivity calculated as sigma = (I/V)*(L/Wd).

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2023 · Linker-Based Bandgap Tuning in Conductive MOF Solid Solutions

Cu3(TATHB)2 / Cu-TATHB (x = 0) · Pellet · Pressed 5 mm pellets under 1.5 tons; thickness measured by caliper; ambient conditions for bulk conductivity trend.

Electrical TransportFour contactVariable temperature

Four-probe van-der-Pauw temperature-dependent conductivity

2023 · Near IR Bandgap Semiconducting 2D Conjugated Metal-Organic Framework with Rhombic Lattice and High Mobility

Cu2(OHPTP) pellet for van-der-Pauw conductivity · Pellet · Commercial Lakeshore Hall System 9700A; pellet made from MOF powder; under argon; 40-300 K conductivity fit.

Electrical TransportFour contact

Four-point linear probe bulk conductivity

2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks

pressed Bi(HHTP) pellet series · Pellet · 100 mg samples pressed into 6 mm diameter, 0.4 mm thick pellets; conductivity calculated from voltage-current plots.

Electrical TransportFour contact

four-probe van der Pauw method using Keithley 2400 digital source meter

2023 · Orientation Control of a Two-Dimensional Conductive Metal-Organic Framework Thin Film by a Pyridine Vapor-Assisted Dry Process

(001)-oriented Cu3(HHTP)2 thin film annealed with 3 uL pyridine · Thin Film · Room-temperature in-plane conductivity; Au electrodes at four corners, 5 mm x 5 mm film specimen, electrode distance about 3 mm; currents 1.00 x 10^-8 to 5.00 x 10^-7 A.

Electrical TransportFour contact

four-probe van der Pauw method using Keithley 2400 digital source meter

2023 · Orientation Control of a Two-Dimensional Conductive Metal-Organic Framework Thin Film by a Pyridine Vapor-Assisted Dry Process

as-deposited Cu3(HHTP)2-like thin film on alpha-Al2O3 (001) · Thin Film · Room-temperature in-plane conductivity of noncrystalline as-deposited thin film; Au electrodes at four corners; currents 1.00 x 10^-8 to 5.00 x 10^-7 A.

Electrical TransportUnspecified subtype

Alternating-current impedance converted to real conductivity

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 pressed pellet · Pellet · Alpha-A/Novocontrol impedance on pellets between gold electrodes; 0.1 V, 1 Hz to 4 x 10^7 Hz, 22 C, dry nitrogen flow.

Electrical TransportTwo contact

Two-probe direct-current conductivity

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 pressed pellet · Pellet · Through-plane and in-plane two-probe measurements on pressed pellets; through-plane compressed at 100 N; in-plane U-I from -1 to 1 V with 0.5 cm electrode spacing.

Electrical TransportTwo contact

Two-probe direct-current through-plane conductivity after gold contact coating

2023 · Overcoming Diffusion Limitation of Faradaic Processes: Property-Performance Relationships of 2D Conductive Metal-Organic Framework Cu3(HHTP)2 for Reversible Lithium-Ion Storage

Gold-coated flake-like Cu3(HHTP)2 pressed pellet · Pellet · Pressed flake-like pellet coated with thin gold film on both sides and remeasured through-plane.

Electrical TransportTwo contact

Two-probe direct-current conductivity

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 pressed pellet · Pellet · Through-plane and in-plane two-probe measurements on pressed pellets; through-plane compressed at 100 N; in-plane U-I from -1 to 1 V with 0.5 cm electrode spacing.

Electrical TransportUnspecified subtype

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.

Electrical TransportUnspecified subtype

current-voltage (I-V)

2023 · Preparation of hierarchical MOF-5 films using morphology controlled ZnO coatings for temperature dependent optical sensors application

MOF-5/ZnO nanorod MSM photodetector · Electrode · Dark and 365 nm UV illumination at 290 K and 300 K; bias from -10 to +10 V

Electrical TransportUnspecified subtype

current-voltage (I-V) and Schottky-diode analysis under dark and photoillumination

2023 · Pyridyl-Isonicotinoyl Hydrazone-Bridged Zn(II) Coordination Framework with Thiophenedicarboxylato Link: Structure, Biological Activity, and Electrical Conductivity

ITO/compound 1/Al metal-semiconductor thin-film device · Thin Film · Room temperature 26 deg C; applied bias within +/-2 V; dark and light illumination with intensity approximately 100 mW cm-2.

Electrical TransportTwo contact

Two-probe IV conductivity on powder compacts

2023 · Redox-Active Mixed-Linker Metal–Organic Frameworks with Switchable Semiconductive Characteristics for Tailorable Chemiresistive Sensing

Mn2[TTF]x[NiS4]1-x powder compact series · Pellet · Room-temperature IV under vacuum (10^-6 mbar) using Lake Shore TTPX and Agilent 2902a; conductivity calculated from conductance and compact geometry.

Electrical TransportUnspecified subtype

Electrical conductivity values cited from Chen et al. 2020

2023 · Ruthenium(II) complex-grafted conductive metal-organic frameworks with conductivity- and confinement-enhanced electrochemiluminescence for ultrasensitive biosensing application

Ni3(HITP)2 black powder · Powder · Reported literature conductivities used to rationalise ECL differences among Ni, Cu and Co M3(HITP)2 carriers.

Electrical TransportFour contact

four-point probe conductivity

2023 · Self-Powered Disinfection Using Triboelectric, Conductive Wires of Metal-Organic Frameworks

Cu-HHTP NW-Cu electrode · Electrode · Conductivity measured using RM3000 Test Unit; Cu-HHTP NW-Cu compared with Cu(OH)2 NW-Cu precursor.

Sensing ApplicationUnspecified subtype

Current-voltage measurement under dark and 980 nm illumination

2023 · Self-Powered Infrared Photodetectors with Ultra-High Speed and Detectivity Based on Amorphous Cu-Based MOF Films

flexible p-a-Cu-HHTP MSM photodetector on PI · Electrode · Flexible MSM p-a-Cu-HHTP photodetector measured in dark and under 980 nm illumination at 20 V bias.

Electrical TransportVariable temperature

Temperature-dependent resistivity and Arrhenius conductivity fitting

2023 · Self-Powered Infrared Photodetectors with Ultra-High Speed and Detectivity Based on Amorphous Cu-Based MOF Films

p-a-Cu-HHTP MOF film on electrospun nanofibres · Thin Film · Resistivity measured at different temperatures; ln(sigma/sigma300K) fitted to extended-state, tailed-state, and short-range hopping components.

Electrical TransportFour contact

parallel four-probe direct-current electrical conductivity

2023 · Semiconducting Conjugated Coordination Polymer with High Charge Mobility Enabled by “4 + 2” Phenyl Ligands

Cu4DHTTB pellet sample · Pellet · Pellet with four parallel gold electrodes, 500 um electrode width, 1 mm spacing, measured under high vacuum and dark environment with 100 mA current.

Electrical TransportTwo contact

two-contact probe electrical conductivity

2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance

pressed Cu-HATN bulk pellet · Pellet · Pressed bulk sample under ambient conditions; Keithley 4200A-SCS parameter analyser.

Electrical TransportVariable temperature

Arrhenius analysis of temperature-dependent EIS conductivity

2023 · Super Proton Conductivity Through Control of Hydrogen-Bonding Networks in Flexible Metal–Organic Frameworks

Im@MIL-88B-LB · Powder · Activation energies extracted from 20-60 deg C conductivity at 95% RH for pristine and imidazole-loaded MIL-88B samples.

Electrical TransportFour contactVariable temperature

temperature-dependent in-plane resistivity; four-contact conductivity

2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries

Ni-mba-K conductivity pellet · Pellet · 20-40 um cold-pressed pellet, gold contacts, four-arm Lakeshore probe station under vacuum (10^-4 Pa), 30 deg C reported

Electrical TransportFour contactVariable temperature

temperature-dependent in-plane resistivity; four-contact conductivity

2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries

Ni-mba-Na conductivity pellet · Pellet · 20-40 um cold-pressed pellet, gold contacts, four-arm Lakeshore probe station under vacuum (10^-4 Pa), 30 deg C reported

Electrical TransportUnspecified subtype

Arrhenius activation energy from conductivity

2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors

DUT-67(Hf) pressed pellet with platinum electrodes · Pellet · Ea fitted from temperature-dependent proton conductivity at 68% and 98% RH

Electrical TransportUnspecified subtype

Arrhenius activation energy from conductivity

2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors

DUT-67(Zr) pressed pellet with platinum electrodes · Pellet · Ea fitted from temperature-dependent proton conductivity at 68% and 98% RH

Electrical TransportUnspecified subtype

AC impedance proton conductivity

2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors

DUT-67(Hf) pressed pellet with platinum electrodes · Pellet · 30-100 deg C, 68/75/85/93/98% RH and 98% RH-D2O; 100 mV, 1-10^6 Hz; quasi-four-probe

Electrical TransportUnspecified subtype

AC impedance proton conductivity

2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors

DUT-67(Zr) pressed pellet with platinum electrodes · Pellet · 30-100 deg C, 68/75/85/93/98% RH and 98% RH-D2O; 100 mV, 1-10^6 Hz; quasi-four-probe

Electrical TransportTwo contact

Two-probe conductivity measurement with Keithley 2636B source meter

2023 · Two-Dimensional Conductive Metal-Organic Framework Reinforced Spinterface in Organic Spin Valves

PcM-Cu-nC MOF film series (M = Ni, Cu, H2; n = 10-40 cycles) · Thin Film · Au-patterned PcM-Cu MOF films; conductivity versus reciprocal temperature; vacuum at 300 K for reported conductivities.

Electrical TransportTwo contact

Two-probe electrical conductivity

2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing

HIOTP-Cu pressed pellet · Pellet · Ambient conditions on pressed pellet; Keithley 4200-SCS source meter.

Electrical TransportTwo contact

Two-probe electrical conductivity

2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing

HIOTP-Ni pressed pellet · Pellet · Ambient conditions on pressed pellet; Keithley 4200-SCS source meter.

Electrical TransportTwo contact

Two-probe electrical conductivity after iodine doping

2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing

iodine-doped HIOTP-Ni pellet · Pellet · Iodine-doped pressed pellets measured by current-voltage curves at 298 K.

Electrical TransportVariable temperature

Variable-temperature conductivity and Arrhenius fitting

2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing

HIOTP-Ni pressed pellet · Pellet · Variable-temperature conductivity measurements; main text states 273-313 K, while SI axes show a higher plotted range.

Electrical TransportUnspecified subtype

electrical conductivity measurement; method details not reported

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF powder · Powder · Conductivity of synthesised nitrogen-rich TABQ-CHHO-COF reported in design rationale.

Electrical TransportFour contact

four-probe single-crystal conductivity with FIB-deposited Pt contacts

2023 · Wavy Two-Dimensional Conjugated Metal-Organic Framework with Metallic Charge Transport

Isolated Cu3(HFcHBC)2 single crystal device · Single Crystal · Temperature-dependent conductivity from 310 to 100 K; contact resistance excluded for room-temperature conductivity; Ohmic contacts checked by I-V.

Electrical TransportUnspecified subtype

Current-voltage (I-V) under d.c. bias

2023 · Zeolites as a Class of Semiconductors for High-Performance Electrically Transduced Sensing

Na-ZSM-5 (9.8) · Powder · Na-ZSM-5 diode device; 25-350 C depending on measurement

Electrical TransportUnspecified subtype

Photocurrent-time and dark I-V response

2023 · Zeolites as a Class of Semiconductors for High-Performance Electrically Transduced Sensing

Na-ZSM-5 (9.8) UV photodetector film · Thin Film · 280 nm UV illumination at 1 V bias; room temperature

Electrical TransportUnspecified subtype

Photoresponse I-V measurements under varied light wavelength and intensity

2022 · 2D Cd(II)-MOF of Pyridyl-Imidazoquinazoline: Structure, Luminescence, and Selective Detection of TNP and Fabrication of Semiconducting Devices

ITO/CP 1/Al metal-semiconductor thin-film device · Thin Film · 310 nm UV and 700 nm visible light; intensity varied at 80, 100 (AM1.5G standard), and 120 mW cm^-2; calibrated photodiodes used at point of measurement.

Electrical TransportUnspecified subtype

Frequency-dependent AC conductivity

2022 · 2D Metal–Organic Framework Cu3(HHTT)2 Films for Broadband Photodetectors from Ultraviolet to Mid-Infrared

Optimised 12-cycle Cu3(HHTT)2 film on SiO2/Si · Thin Film · AC conductivity measured from 1 to 20 kHz at room temperature; probe station in glovebox connected to electrochemical workstation.

Electrical TransportVariable temperature

Temperature-dependent DC conductivity

2022 · 2D Metal–Organic Framework Cu3(HHTT)2 Films for Broadband Photodetectors from Ultraviolet to Mid-Infrared

Optimised 12-cycle Cu3(HHTT)2 film on SiO2/Si · Thin Film · Cu3(HHTT)2 film on SiO2/Si substrate with prepatterned Au electrodes; channel length 5 um and width 800 um; conductivity measured from 295 to 10 K.

Electrical TransportUnspecified subtype

Space-charge-limited-current fitting of I-V curves

2022 · 2D Metal–Organic Framework Cu3(HHTT)2 Films for Broadband Photodetectors from Ultraviolet to Mid-Infrared

Optimised 12-cycle Cu3(HHTT)2 film on SiO2/Si · Thin Film · High-bias nonlinear I-V curves fitted to SCLC equation over 255-120 K; dielectric constant assumed 1.5.

Electrical TransportUnspecified subtype

I-V curves on thickness series

2022 · 2D Metal–Organic Framework Cu3(HHTT)2 Films for Broadband Photodetectors from Ultraviolet to Mid-Infrared

Cu3(HHTT)2 optimum-condition thickness series · Thin Film · Devices with 4, 6, 8, and 12 growth cycles; I_DS versus V_DS from -1 to 1 V.

Electrical TransportFour contact

four-point probe

2022 · A Monocrystalline Coordination Polymer with Multiple Redox Centers as a High-Performance Cathode for Lithium-Ion Batteries

pressed CuCA pellet for four-point probe · Pellet · Pressed CuCA pellet measured using RTS-8 four-point probe meter.

Electrical TransportTwo contact

two-point probe linear sweep I-V

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Mg) pressed pellet · Pellet · HMS-5000/AMP55 Ecopia Hall Effect Measurement System; Au contacts in square geometry; about 5.2 mm contact distance; about 500 um pellet thickness; ambient room temperature; dark; voltage -7 to 7 V

Electrical TransportTwo contact

two-point probe linear sweep I-V

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Ni) pressed pellet · Pellet · HMS-5000/AMP55 Ecopia Hall Effect Measurement System; Au contacts in square geometry; about 5.2 mm contact distance; about 500 um pellet thickness; ambient room temperature; dark; voltage -7 to 7 V

Electrical TransportTwo contact

two-point probe linear sweep I-V

2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity

PDI-MOF-74(Zn) pressed pellet · Pellet · HMS-5000/AMP55 Ecopia Hall Effect Measurement System; Au contacts in square geometry; about 5.2 mm contact distance; about 500 um pellet thickness; ambient room temperature; dark; voltage -7 to 7 V

Electrical TransportFour contact

Four-point probe conductivity

2022 · A novel Sn-based coordination polymer with high-efficiency and ultrafast lithium storage

pressed Sn-DHTPA powder for four-point probe · Pellet · 4ppscan system at room temperature after pressing powder in stainless-steel die for 0.5 h at 10 MPa

Electrical TransportUnspecified subtype

two-terminal I-V conductivity

2022 · A one-dimensional conductive metal-organic framework with extended π-d conjugated nanoribbon layers

DDA-Cu film two-terminal device on Si/SiO2 · Thin Film · Si/SiO2 transferred film; l=50 um, d=1400 um, h~8 nm; room temperature

Electrical TransportFour contact

Four-probe I-V conductivity measurement.

2022 · A semiconducting uranium-organic framework based on a tetrathiafulvalene derivative

SCU-125 pressed pellets · Pellet · 25 deg C +/- 2 deg C; voltage swept from -5 to 5 V; four samples with different thicknesses; I-V curves repeated three times for each sample.

Electrical TransportTwo contact

two-contact direct-current I-V measurement on pressed pellet

2022 · A stable lanthanum hydroxamate metal-organic framework with radical character and electrical conductivity

La-ONDI-DMA pressed pellet · Pellet · Pressed pellet between two silver-ink-coated hard plastic sheets covered with Cu film; Biologic SP-150 potentiostat; voltage sweep -1 to +1 V; room temperature under ambient atmosphere.

Electrical TransportVariable temperature

temperature-dependent conductivity; Arrhenius activation-energy analysis

2022 · A stable lanthanum hydroxamate metal-organic framework with radical character and electrical conductivity

La-ONDI-DMF pressed pellet · Pellet · Pressed pellet conductivities measured in an oven under ambient atmosphere; oven temperature increased from room temperature to 80 C in 2 h. DMF sample is representative sample key; DMA and Catechol activation energies are also recorded in results.

Electrical TransportUnspecified subtype

I-V curves before/after GA and DNA modification

2022 · Adjustable Synthesis of Ni-Based Metal-Organic Framework Membranes and Their Field-Effect Transistor Sensors for Mercury Detection

S4-based Ni3(HITP)2-GA-DNA FET sensor · Electrode · Channel membrane electrical properties tested before and after modification with GA and DNA probes.

Electrical TransportTwo contact

two-contact I-V conductivity

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

Ni-HTP pellet · Pellet · pellet I-V at 298.25 K; L = 2.00 mm, D = 7.00 mm

Electrical TransportTwo contact

two-contact I-V conductivity

2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries

NiRu-HTP pellet · Pellet · pellet I-V at 298.25 K; L = 2.00 mm, D = 7.00 mm

Electrical TransportUnspecified subtype

Ambient direct-current electrical conductivity

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 measured at 303 K and 90% RH; reported to follow ionic-capacitive conduction mechanism.

Electrical TransportUnspecified subtype

Proton conductivity measurement

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 · In4 and In8 measured at 303 K and 98% RH; In8 also reported at 343 K and 98% RH.

Electrical TransportUnspecified subtype

I-V measurement under dark and X-ray irradiation

2022 · Boosting the Optoelectronic Performance by Regulating Exciton Behaviors in a Porous Semiconductive Metal-Organic Framework

mechanical mixture pelleted wafer detector · Pellet · Dark and 17.5 mGyair/s X-ray irradiation; Ag/sample/Ag detector.

Electrical TransportUnspecified subtype

I-V measurement under X-ray dose rates

2022 · Boosting the Optoelectronic Performance by Regulating Exciton Behaviors in a Porous Semiconductive Metal-Organic Framework

RhB+@TbTATAB pelleted wafer detector · Pellet · Tungsten anode radiation device; tube voltage/current 30-160 kV and 2-25 mA; dose-rate calibrated 0.883-17.52 mGyair s-1; current recorded by Keithley 6517B.

Electrical TransportUnspecified subtype

I-V measurement under dark and X-ray irradiation

2022 · Boosting the Optoelectronic Performance by Regulating Exciton Behaviors in a Porous Semiconductive Metal-Organic Framework

TbTATAB pelleted wafer detector · Pellet · Dark and 17.5 mGyair/s X-ray irradiation; Ag/sample/Ag detector.

Electrical TransportTwo contactVariable temperature

Two-probe temperature-dependent conductivity

2022 · Bromine Vapor Induced Continuous p- to n-Type Conversion of a Semiconductive Metal-Organic Framework Cu[Cu(pdt)2]

Br0.44@Cu[Cu(pdt)2] · Pellet · Quantum Design PPMS under constant voltage 95 mV; Arrhenius plot for Br0.44@Cu[Cu(pdt)2].

Electrical TransportUnspecified subtype

Current-voltage (I-V)

2022 · Charge-transfer interface of insulating metal-organic frameworks with metallic conduction

Pristine Cu-BPyDC thin film · Thin Film · Room-temperature I-V profile with EGaIn contacts.

Electrical TransportUnspecified subtype

Current-voltage (I-V)

2022 · Charge-transfer interface of insulating metal-organic frameworks with metallic conduction

Pristine Cu-TCNQ thin film · Thin Film · Room-temperature cross-plane and in-plane I-V profiles with EGaIn contacts.

Electrical TransportUnspecified subtype

Current-voltage (I-V)

2022 · Charge-transfer interface of insulating metal-organic frameworks with metallic conduction

Cu-TCNQ/Cu-BPyDC heterostructured thin film · Thin Film · Room-temperature in-plane and cross-plane I-V profiles on several spots and batches.

Electrical TransportUnspecified subtype

Current-voltage (I-V)

2022 · Charge-transfer interface of insulating metal-organic frameworks with metallic conduction

TCNQ@Cu-BPyDC thin film · Thin Film · Room-temperature in-plane and cross-plane I-V profiles for TCNQ@Cu-BPyDC.

Electrical TransportVariable temperature

Temperature-dependent current-voltage (I-V)

2022 · Charge-transfer interface of insulating metal-organic frameworks with metallic conduction

Cu-TCNQ/Cu-BPyDC heterostructured thin film · Thin Film · Cross-plane I-V profiles from 160 K to 373 K.

Electrical TransportFour contactVariable temperature

Temperature-dependent electrical conductivity from Ecopia HMS-5300 Van der Pauw measurement

2022 · Charge. transport, conductivity and Seebeck coefficient in pristine and TCNQ loaded preferentially grown metal-organic framework films

Random polycrystalline TCNQ-loaded HKUST-1 SURMOF film on borosilicate glass, ca. 130 nm · Thin Film · Conductivity of approximately 130 nm TCNQ-loaded random polycrystalline HKUST-1 film on insulating borosilicate glass over 260-350 K.

Electrical TransportVariable temperature

Temperature-dependent electrical conductivity and Arrhenius analysis

2022 · Charge. transport, conductivity and Seebeck coefficient in pristine and TCNQ loaded preferentially grown metal-organic framework films

Random polycrystalline TCNQ-loaded HKUST-1 SURMOF film on hydroxyl-terminated SiO2/Si · Thin Film · TCNQ-loaded SURMOF film on 40 nm isolation SiO2 covered Si with bottom Au contacts.

Electrical TransportUnspecified subtype

Lateral current-voltage measurement

2022 · Charge. transport, conductivity and Seebeck coefficient in pristine and TCNQ loaded preferentially grown metal-organic framework films

Preferentially (001)-oriented pristine HKUST-1 SURMOF film, 100 nm · Thin Film · In-plane I-V from -10 V to 10 V on preferentially (001)-oriented pristine HKUST-1 film on functionalized quartz.

Electrical TransportUnspecified subtype

Lateral current-voltage measurement

2022 · Charge. transport, conductivity and Seebeck coefficient in pristine and TCNQ loaded preferentially grown metal-organic framework films

Preferentially (001)-oriented TCNQ-loaded HKUST-1 SURMOF film, 100 nm · Thin Film · In-plane I-V from -10 V to 10 V on preferentially oriented TCNQ-loaded HKUST-1 film on functionalized quartz.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity; Arrhenius fit

2022 · Chemical structure modulation in conductive MOFs by adjusting the oxidation state of the ligand and introducing alkali metal ions

MnCsTHBQ compressed cuboid pellet · Pellet · Compressed cuboid pellet; 300-400 K; KEITHLEY 2002 multimeter; conductive adhesive contacts.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity; Arrhenius fit

2022 · Chemical structure modulation in conductive MOFs by adjusting the oxidation state of the ligand and introducing alkali metal ions

MnHHB compressed cuboid pellet · Pellet · Compressed cuboid pellet; 300-400 K; KEITHLEY 2002 multimeter; conductive adhesive contacts.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity; Arrhenius fit

2022 · Chemical structure modulation in conductive MOFs by adjusting the oxidation state of the ligand and introducing alkali metal ions

MnRbTHBQ compressed cuboid pellet · Pellet · Compressed cuboid pellet; 300-400 K; KEITHLEY 2002 multimeter; conductive adhesive contacts.

Electrical TransportTwo contact

I-V curves from two-point probe devices

2022 · Chemical Vapor Deposition of Edge-on Oriented 2D Conductive Metal-Organic Framework Thin Films

EBL-patterned Cu3(C6O6)2 four-point-probe thin-film device · Electrode · Ohmic contact check between Cu3(C6O6)2 film and Au electrodes.

Electrical TransportFour contactVariable temperature

Variable-temperature four-point-probe conductivity

2022 · Chemical Vapor Deposition of Edge-on Oriented 2D Conductive Metal-Organic Framework Thin Films

EBL-patterned Cu3(C6O6)2 four-point-probe thin-film device · Electrode · Device cooled to about 130 K with He compressor in SI method; main transport analysis covers Arrhenius and 3D variable-range hopping regimes.

Electrical TransportFour contact

Four-point collinear current-voltage transport measurement

2022 · Conductive Hybrid Cu-HHTP-TCNQ Metal–Organic Frameworks for Chemiresistive Sensing

Cu-HHTP-TCNQ film on glass chip with prepatterned gold electrodes, 45 min · Electrode · Voltage swept linearly with amplitude 3 V at 12 V s^-1; current monitored by current amplifier; nonconducting devices below 1 nS excluded.

Electrical TransportFour contactVariable temperature

Temperature-dependent four-point electrical conductivity

2022 · Conductive Hybrid Cu-HHTP-TCNQ Metal–Organic Frameworks for Chemiresistive Sensing

Cu-HHTP-TCNQ film on glass chip with prepatterned gold electrodes, 45 min · Electrode · Variable-temperature cryostat, Keithley 236 SMU, maximum current 9 nA, sweep rate 0.1 nA s^-1; temperature controlled with mK resolution.

Electrical TransportTwo contact

Two-point pressed-pellet conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

Cu3(HHTP)2 pressed-pellet control · Pellet · Cu3(HHTP)2 pellet control measured with the same two-electrode screw cell; three pellet values in Table S7 and average in Table 2.

Electrical TransportUnspecified subtype

Single-crystal out-of-plane conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

Cu3(HHTP)2 single-crystal literature comparator · Single Crystal · Literature comparator from ref. 43 tabulated in this paper.

Electrical TransportTwo contact

Two-point packed/pressed pellet conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

CuTOTP-OC18 bulk powder/pellet sample · Powder · Packed pellets measured with BioLogic SP-200 using two-electrode PEEK/brass screw cell; 8-10 mg powder, 0.56 Nm compression, settled 8 h then 18 h; average of three measurements in Table 2.

Electrical TransportTwo contact

Two-point packed/pressed pellet conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

CuTOTP-OC2 bulk powder/pellet sample · Powder · Packed pellets measured with BioLogic SP-200 using two-electrode PEEK/brass screw cell; 8-10 mg powder, 0.56 Nm compression, settled 8 h then 18 h; average of three measurements in Table 2.

Electrical TransportTwo contact

Two-point packed/pressed pellet conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

CuTOTP-OC4 bulk powder/pellet sample · Powder · Packed pellets measured with BioLogic SP-200 using two-electrode PEEK/brass screw cell; 8-10 mg powder, 0.56 Nm compression, settled 8 h then 18 h; average of three measurements in Table 2.

Electrical TransportTwo contact

Two-point packed/pressed pellet conductivity

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

CuTOTP-OC6 bulk powder/pellet sample · Powder · Packed pellets measured with BioLogic SP-200 using two-electrode PEEK/brass screw cell; 8-10 mg powder, 0.56 Nm compression, settled 8 h then 18 h; average of three measurements in Table 2.

Electrical TransportTwo contact

Two-point packed-pellet conductivity negative control

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

H4TOTP-OC2 plus copper acetate monohydrate 1:1 packed control · Pellet · 1:1 mol mixture with copper acetate monohydrate packed and measured as detailed for conductivity cell.

Electrical TransportTwo contact

Two-point packed-pellet conductivity negative control

2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity

3-OC2 plus copper acetate monohydrate 1:1 packed control · Pellet · 1:1 mol mixture with copper acetate monohydrate packed and measured as detailed for conductivity cell.

Electrical TransportTwo contact

two-probe current-voltage conductivity measurement

2022 · Crystal Structure and Electrochemical and Charge Transfer Properties in Redox-Active Coordination Polymers Based on a Truncated Tetrathiafulvalene Linker

Cd-m-TTFTB pressed pellet · Pellet · Pressed pellet; Keithley 2400 source meter; CRX-4K probe station; ambient conditions; voltage swept from -2 V to 2 V.

Electrical TransportTwo contact

two-probe current-voltage conductivity measurement

2022 · Crystal Structure and Electrochemical and Charge Transfer Properties in Redox-Active Coordination Polymers Based on a Truncated Tetrathiafulvalene Linker

Zn-m-TTFTB pressed pellet · Pellet · Pressed pellet; Keithley 2400 source meter; CRX-4K probe station; ambient conditions; voltage swept from -2 V to 2 V.

Electrical TransportFour contact

four-probe van der Pauw conductivity

2022 · Defect Engineering to Tailor Metal Vacancies in 2D Conductive Metal-Organic Frameworks: An Example in Electrochemical Sensing

Ag-BHT film prepared at pH 2 · Thin Film · Room-temperature conductivity for Ag-BHT films prepared at pH 2, 1, and 0.

Electrical TransportFour contact

four-probe van der Pauw conductivity

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 · Room-temperature conductivity for Cu-BHT films prepared at pH 2, 1, and 0; three samples per pH, four positions per film.

Electrical TransportFour contactVariable temperature

temperature-dependent four-probe conductivity

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 · Conductivity of Cu-BHT films measured as a function of increasing temperature; log(sigma) vs reciprocal temperature plotted.

Electrical TransportFour contact

four-probe van der Pauw conductivity

2022 · Defect Engineering to Tailor Metal Vacancies in 2D Conductive Metal-Organic Frameworks: An Example in Electrochemical Sensing

Ni-BHT film prepared at pH 2 · Thin Film · Room-temperature conductivity for Ni-BHT films prepared at pH 2, 1, and 0.

Electrical TransportTwo contact

Two-probe electrical conductivity during air oxidation

2022 · Dimensionality Modulates Electrical Conductivity in Compositionally Constant One-, Two-, and Three-Dimensional Frameworks

As-synthesised Ni-3D rods worked up under N2 · Powder · Anaerobic Ni-3D measured before and after air exposure/oxidation to Ni-3D-ox.

Electrical TransportFour contact

Room-temperature four-probe conductivity on pressed pellets

2022 · Dimensionality Modulates Electrical Conductivity in Compositionally Constant One-, Two-, and Three-Dimensional Frameworks

Ni-1D rods/bricks · Powder · Pressed pellets measured at 296 K in ambient atmosphere; four parallel copper-wire contacts and gold-plated tungsten probes; at least three pellets from four separate batches averaged.

Electrical TransportFour contactVariable temperature

Variable-temperature four-contact conductivity; Arrhenius and Mott VRH fits

2022 · Dimensionality Modulates Electrical Conductivity in Compositionally Constant One-, Two-, and Three-Dimensional Frameworks

Ni-1D rods/bricks · Powder · PPMS DynaCool, Electrical Transport Option, 15 or 100 K to 350 or 400 K; heating/cooling cycles; Ni-2D cooling sequence first to prevent transformation.

Electrical TransportUnspecified subtype

Pressed-pellet current-voltage measurement

2022 · Electrical conductivity through π–π stacking in a two-dimensional porous gallium catecholate metal–organic framework

Pressed pellet of Ga9(HOTP)4 · Pellet · Sample I-V curve for a pressed pellet; linear fit used to demonstrate Ohmic behaviour.

Electrical TransportTwo contact

Two-probe pressed-pellet resistivity/conductivity measurement

2022 · Electrical conductivity through π–π stacking in a two-dimensional porous gallium catecholate metal–organic framework

Pressed pellet of Ga9(HOTP)4 · Pellet · Room-temperature conductivity measured over three independent batches; each point in Figure 4A represents a separate device.

Electrical TransportUnspecified subtype

DC resistance/conductivity by direct probe

2022 · Electrically Conductive Photoluminescent Porphyrin Phosphonate Metal–Organic Frameworks

GTUB3 single crystals and small crystal bundles under DC probe · Single Crystal · Keithley DMM4050 6.5-digit multimeter; stainless-steel probe moved by x/y/z micrometer stages under optical microscope; about 200 random measurements; two-wire/probe resistance about 8 Ohm compensated.

Electrical TransportTwo contact

Two-probe current-voltage (I-V)

2022 · Electrically regulating nonlinear optical limiting of metal-organic framework film

Cu-HHTP[001] film · Thin Film · Vertical devices; voltage swept from about -2 to +2 V as shown in Fig. 3a.

Electrical TransportTwo contact

Two-point probe electrical conductivity on pressed pellet

2022 · Enhancing the energy storage performances of metal-organic frameworks by controlling microstructure

A-CuHHTP powder · Powder · Pellet pressed in 13 mm evacuable die; 4 ton-force cm^-2 for 1 min; measured under 4 ton-force cm^-2 between stainless-steel electrodes with Keithley 2000 multimeter.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

CF-1000 · Thin Film · Surface resistance of CF-1000 control fabric.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

CF-700 · Thin Film · Surface resistance of CF-700 control fabric.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

CF-800 · Thin Film · Surface resistance of CF-800 control fabric.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

CF-900 · Thin Film · Surface resistance of CF-900 control fabric.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

Co-CCF-1000 · Thin Film · Surface resistance of Co-CCF-1000.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

Co-CCF-700 · Thin Film · Surface resistance of Co-CCF-700.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

Co-CCF-800 · Thin Film · Surface resistance of Co-CCF-800.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

Co-CCF-900 · Thin Film · Surface resistance of Co-CCF-900.

Electrical TransportFour contact

RTS-9 four-point detector

2022 · Flexible Smart Wearable Co@C@Carbon Fabric for Efficient Electromagnetic Shielding, Thermal Therapy, and Human Movement Monitoring

Co-PCCF-1000 · Thin Film · Surface resistance of Co-PCCF-1000 after PDMS encapsulation.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF

Pressed Cu-THQ-BPY pellet series · Pellet · Pressed pellets from Cu-THQ-BPY powders with varied BPY feed ratios; approximately 5 mg powder under 1.5 tons; no binder or conducting additive; room temperature.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF

Pressed Cu-THQ pellet for four-point conductivity · Pellet · Pressed pellet, approximately 5 mg powder under 1.5 tons; no binder or conducting additive; Keithley SCS-4200 parameter analyser at room temperature.

Electrical TransportFour contact

Four-point probe bulk electrical conductivity

2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF

Physically mixed Cu-THQ and BPY powder · Powder · Physical mixture of Cu-THQ and equivalent BPY molecules tested to check whether BPY mixing alone changes conductivity.

Electrical TransportTwo contact

Two-probe d.c. current-voltage conductivity on pressed pellets

2022 · High performance Li-, Na-, and K-ion storage in electrically conducting coordination polymers

pressed A2-TM-PTtSA pellets · Pellet · Variable-temperature conductivity in a climatic chamber; powder pressed at 384 MPa between carbon-coated aluminium foils and encapsulated in Swagelok cells under Ar.

Electrical TransportUnspecified subtype

Powder electrical conductivity

2022 · Host-guest molecular interaction promoted urea electrosynthesis over a precisely designed conductive metal-organic framework

Co-PMDA powder · Powder · Powder conductivity of pristine framework control.

Electrical TransportUnspecified subtype

Powder electrical conductivity

2022 · Host-guest molecular interaction promoted urea electrosynthesis over a precisely designed conductive metal-organic framework

Co-PMDA-2-mbIM powder · Powder · Powder conductivity; exact device geometry not specified in the supplied text.

Electrical TransportFour contact

Four-point probe conductivity

2022 · Imparting Functionality and Enhanced Surface Area to a 2D Electrically Conductive MOF via Macrocyclic Linker

Pristine Cu-HHTC pressed pellet · Pellet · Pressed pellet measured under ambient conditions with Keithley SCS-4200; approximately 5 mg in 5 mm die under 1.5 tons, no binder or conductive additive.

Electrical TransportUnspecified subtype

Current-voltage (I-V) measurement

2022 · Improved electrical conductivity of Co(ii) and Cu(ii) ladder polymers in the fabrication of photoresponsive Schottky devices

Al/Co-CP/ITO Schottky device · Thin Film · Applied bias +/-1 V under dark and light conditions; conductivity and photosensitivity listed in Table 1.

Electrical TransportUnspecified subtype

Thermionic-emission/Cheung analysis of I-V curves

2022 · Improved electrical conductivity of Co(ii) and Cu(ii) ladder polymers in the fabrication of photoresponsive Schottky devices

Al/Co-CP/ITO Schottky device · Thin Film · G(J) vs J and H(J) vs J fits under dark and light conditions.

Electrical TransportUnspecified subtype

Current-voltage (I-V) measurement

2022 · Improved electrical conductivity of Co(ii) and Cu(ii) ladder polymers in the fabrication of photoresponsive Schottky devices

Al/Cu-CP/ITO Schottky device · Thin Film · Applied bias +/-1 V under dark and light conditions; conductivity and photosensitivity listed in Table 1.

Electrical TransportUnspecified subtype

Thermionic-emission/Cheung analysis of I-V curves

2022 · Improved electrical conductivity of Co(ii) and Cu(ii) ladder polymers in the fabrication of photoresponsive Schottky devices

Al/Cu-CP/ITO Schottky device · Thin Film · G(J) vs J and H(J) vs J fits under dark and light conditions.

Electrical TransportTwo contact

two-point I-V conductivity measurement

2022 · In-Plane Oriented Two-Dimensional Conjugated Metal-Organic Framework Films for High-Performance Humidity Sensing

free-standing in-plane oriented HIB-Cu film · Thin Film · Room temperature under nitrogen; voltage swept from -0.5 V to 0.5 V in 400 steps.

Electrical TransportFour contact

Hall effect measurement, van der Pauw geometry

2022 · In-Plane Oriented Two-Dimensional Conjugated Metal-Organic Framework Films for High-Performance Humidity Sensing

free-standing in-plane oriented HIB-Cu film · Thin Film · Lakeshore Hall System 9700A; magnetic field swept from -4 T to 4 T at 300 K.

Electrical TransportUnspecified subtype

I-V characteristics; thermionic emission theory; Cheung's method

2022 · Insight into charge transportation in cadmium based semiconducting organic-inorganic hybrid materials and their application in the fabrication of photosensitive Schottky devices

CD1, complex 1 based Schottky device · Thin Film · Applied bias sequentially within +/-2 V under dark and photo-irradiation (approximately 100 mW cm^-2); Schottky parameters extracted from I-V, dV/dlnI vs I, and H(I) vs I.

Electrical TransportUnspecified subtype

I-V characteristics; thermionic emission theory; Cheung's method

2022 · Insight into charge transportation in cadmium based semiconducting organic-inorganic hybrid materials and their application in the fabrication of photosensitive Schottky devices

CD2, complex 2 based Schottky device · Thin Film · Applied bias sequentially within +/-2 V under dark and photo-irradiation (approximately 100 mW cm^-2); Schottky parameters extracted from I-V, dV/dlnI vs I, and H(I) vs I.

Electrical TransportUnspecified subtype

current-voltage characteristics under dark conditions

2022 · Insight into charge transportation in cadmium based semiconducting organic-inorganic hybrid materials and their application in the fabrication of photosensitive Schottky devices

ligand based device · Thin Film · Room temperature I-V measurement; ligand device shown under dark conditions; no conductivity change upon light exposure reported.

Electrical TransportTwo contact

two-probe current-voltage dc sweep using Keithley 2400 source-meter

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 pressed pellet · Pellet · Iodine-treated pellet sandwiched between two Ag-coated stainless-steel electrodes; voltage swept from -1 to +1 V under ambient conditions.

Electrical TransportTwo contact

two-probe current-voltage dc sweep using Keithley 2400 source-meter

2022 · Iodine-induced electrical conductivity of novel columnar lanthanide metal-organic frameworks based on a butterfly-shaped π-extended tetrathiafulvalene ligand

pristine Tb-MOF pressed pellet · Pellet · Pellet sandwiched between two Ag-coated stainless-steel electrodes; voltage swept from -1 to +1 V under ambient conditions; conductivity calculated from sigma = L/(R A).

Electrical TransportFour contact

Four-point-probe electrical conductivity

2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance

Cu-HHTP pressed pellet · Pellet · Pressed pellets; same measurement setting as Fe-HHTP.

Electrical TransportFour contact

Four-point-probe electrical conductivity

2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance

Fe-HHTP pressed pellet · Pellet · Pressed pellets; Keithley SCS-4200 parameter analyser; room-temperature measurement.

Electrical TransportFour contact

Four-point-probe electrical conductivity

2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance

Ni-HHTP pressed pellet · Pellet · Pressed pellets; same measurement setting as Fe-HHTP.

Electrical TransportUnspecified subtype

Electrical conductivity mapping using patterned electrodes

2022 · Large-Area Synthesis of Ultrathin, Flexible, and Transparent Conductive Metal–Organic Framework Thin Films via a Microfluidic-Based Solution Shearing Process

MASS-PRC Ni3(HITP)2 thin film · Thin Film · Large-area film measured at various locations; reported for film thickness about 64 nm.

Electrical TransportUnspecified subtype

conductivity measurement

2022 · Li-TFSI endohedral Metal-Organic frameworks in stable perovskite solar cells for Anti-Deliquescent and restricting ion migration

Li-TFSI@NH2-MIL-101 doped HTL film, 20 mg mL-1 · Thin Film · HTL films; sigma = L/(Rwd); film thickness ~180 nm

Electrical TransportUnspecified subtype

SCLC dark I-V trap-density measurement

2022 · Li-TFSI endohedral Metal-Organic frameworks in stable perovskite solar cells for Anti-Deliquescent and restricting ion migration

PSC with Li-TFSI@NH2-MIL-101 doped HTL · Electrode · hole-only FTO/PEDOT:PSS/perovskite/HTL/Au devices in dark conditions

Electrical TransportUnspecified subtype

Dark current-voltage measurement

2022 · Millimeter-scale semiconductive metal-organic framework single crystal for X-ray imaging

SCU-15 SC device · Single Crystal · Dark I-V curves from -10 V to 10 V with 0.2 V sweeping step; SCU-15 SC and SCU-15 PP compared.

Electrical TransportUnspecified subtype

Current-voltage measurement under X-ray irradiation

2022 · Millimeter-scale semiconductive metal-organic framework single crystal for X-ray imaging

SCU-15 SC device · Single Crystal · SCU-15 SC I-V curves from -4 to +4 V under X-ray irradiation with different tube voltages and currents; tungsten anode RAD SOURCE RS 2000X.

Electrical TransportTwo contact

Two-probe direct-current electrical conductivity

2022 · Multi-stimulus semiconductor Cu(i)-I-pyrimidine coordination polymer with thermo- and mechanochromic sensing

CP1 pressed pellet · Pellet · Pressed pellet measured at 295 K after pressing at 6.0 GPa for 2 min; voltages from -10.0 to +10.0 V.

Electrical TransportTwo contact

Two-probe direct-current electrical conductivity

2022 · Multi-stimulus semiconductor Cu(i)-I-pyrimidine coordination polymer with thermo- and mechanochromic sensing

CP1 colourless needle-shaped single crystals · Single Crystal · At least three single crystals measured at 295 K; voltages from -10.0 to +10.0 V; indexed twin crystal used to measure parallel to the a-axis/Cu-I chain direction.

Electrical TransportUnspecified subtype

reported conductivity from cited Ni3(HiTP)2 literature

2022 · Mutually Noninterfering Flexible Pressure-Temperature Dual-Modal Sensors Based on Conductive Metal-Organic Framework for Electronic Skin

MOF-MSMC-5h composite film/sensor · Thin Film · conductive Ni3(HiTP)2 film conductivity cited in main text

Electrical TransportUnspecified subtype

Two-electrode pellet conductivity by I-V current scan

2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework

Cu3(HHTP)2 air-synthesis particles · Powder · Packed pellets in PEEK 2-electrode screw cell; 7-10 mg powder; 0.56 Nm torque; settled before current scan.

Electrical TransportUnspecified subtype

Two-electrode pellet conductivity by I-V current scan

2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework

Cu3(HHTP)2 air-synthesis rods · Powder · Packed pellets in PEEK 2-electrode screw cell; 7-10 mg powder; 0.56 Nm torque; settled before current scan.

Electrical TransportUnspecified subtype

Two-electrode pellet conductivity by I-V current scan

2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework

Cu3(HHTP)2 blocks, 0.3 equiv 2,5-dichloro pre-oxidant · Powder · Packed pellets in PEEK 2-electrode screw cell; 7-10 mg powder; 0.56 Nm torque; settled before current scan.

Electrical TransportUnspecified subtype

Two-electrode pellet conductivity by I-V current scan

2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework

Cu3(HHTP)2 flakes, 0.5 equiv 2,5-dichloro pre-oxidant · Powder · Packed pellets in PEEK 2-electrode screw cell; 7-10 mg powder; 0.56 Nm torque; settled before current scan.

Electrical TransportUnspecified subtype

Two-electrode pellet conductivity by I-V current scan

2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework

Cu3(HHTP)2 rods, 0 equiv pre-oxidant · Powder · Packed pellets in PEEK 2-electrode screw cell; 7-10 mg powder; 0.56 Nm torque; settled before current scan.

Electrical TransportFour contact

Four-contact I-V measurement

2022 · Porous lanthanide metal–organic frameworks with metallic conductivity

Nd1.5HOTP single-crystal room-temperature conductivity devices · Single Crystal · Wide current-density range; linear fit shown in Fig. 3B

Electrical TransportFour contact

Four-probe van der Pauw conductivity

2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks

Ni3(HATI_C1)2 pressed pellet · Pellet · Pressed pellets measured under vacuum at room temperature and variable temperature; Lakeshore Hall System 9700A.

Electrical TransportFour contact

Four-probe van der Pauw conductivity

2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks

Ni3(HATI_C3)2 pressed pellet · Pellet · Pressed pellets measured under vacuum at room temperature and variable temperature; Lakeshore Hall System 9700A.

Electrical TransportFour contact

Four-probe van der Pauw conductivity

2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks

Ni3(HATI_C4)2 pressed pellet · Pellet · Pressed pellets measured under vacuum at room temperature and variable temperature; Lakeshore Hall System 9700A.

Electrical TransportTwo contact

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 TransportTwo contact

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 TransportTwo contact

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.

Diffraction StructureUnspecified subtype

Powder X-ray diffraction (PXRD), Rigaku Ultima IV

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 · PXRD patterns of all pristine and Mn-decorated powders compared with simulated patterns.

Electrical TransportUnspecified subtype

Current-voltage (I-V) measurement using Keithley 2401 sourcemeter

2022 · Rational synthesis of a pyridyl-imidazoquinazoline based multifunctional 3D Zn(ii)-MOF: structure, luminescence, selective and sensitive detection of Al3+ and TNP, and its semiconducting device application

TFD 1 ITO/synthesised 1/Al thin-film device · Thin Film · Room temperature 26 deg C; dark and photo-irradiation at about 100 mW cm-2; bias within +/-2 V

Electrical TransportTwo contact

two-probe electrical conductivity

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Er-m-TTFTB red rod-like/needle-like single crystal · Single Crystal · Same two-probe single-crystal method; SI Table S2 dimensions length 0.034 cm, width 0.004 cm, thickness 0.004 cm.

Electrical TransportTwo contact

two-probe electrical conductivity

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Gd-m-TTFTB red rod-like/needle-like single crystal · Single Crystal · Same two-probe single-crystal method; SI Table S2 dimensions length 0.007 cm, width 0.005 cm, thickness 0.005 cm.

Electrical TransportTwo contact

two-probe electrical conductivity

2022 · Redox-Active Metal-Organic Frameworks with Three-Dimensional Lattice Containing the m-Tetrathiafulvalene-Tetrabenzoate

Tb-m-TTFTB red rod-like/needle-like single crystal · Single Crystal · Needle-like single crystal; Keithley 2400 source meter on CRX-4K closed-cycle refrigerator probe station at room temperature; conductive carbon adhesive contacts; voltage swept from -1.5 to 1.5 V under ambient conditions.

Electrical TransportTwo contact

Two-probe I-V conductivity

2022 · Redox-Active Ni(II) Nodes Induced Electrochromism in a Two-Dimensional Conductive Metal-Organic Framework

Ni3(HITP)2-362 nm/Au/SiO2/Si two-probe film · Thin Film · Keithley 4200 source meter; ambient environment at room temperature; Au electrodes 80 nm thick; 50 um channel gap and 1000 um channel width; conductivity calculated by eq S5.

Electrical TransportFour contact

Co-linear four-point-probe conductivity

2022 · Size-Dependent Properties of Solution-Processable Conductive MOF Nanocrystals

Fe(TA)2 thin films doctor-bladed in air · Thin Film · Films made in air and allowed to sit in ambient aerobic conditions for over 1 week; four tungsten carbide probes with 1 mm spacing.

Electrical TransportFour contact

Van der Pauw four-point DC conductivity

2022 · Size-Dependent Properties of Solution-Processable Conductive MOF Nanocrystals

25 nm Fe(TA)2 doctor-bladed thin film under N2 · Thin Film · Doctor-bladed films made under N2; silver paint contacts at corners; conductivity measured under N2 and after ambient air exposure.

Electrical TransportUnspecified subtype

DC I-V conductivity

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

TMA2FeGe4S10 pressed pellet after 10 uL deionised water · Pellet · Steady-state current vs applied potential, conductivities from return scan.

Electrical TransportUnspecified subtype

DC I-V conductivity

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

TMA2ZnGe4S10 pressed pellet after 10 uL deionised water · Pellet · Steady-state current vs applied potential, conductivities from return scan.

Electrical TransportUnspecified subtype

solvent-dependent DC I-V conductivity

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

tma2 fe ge4 s10 pressed pellet after 10 uL formamide · Pellet · Pressed-pellet I-V curves after solvent addition; solvents included DCM, THF, alcohols, acetone, water/EtOH mixtures, water, formamide.

Electrical TransportUnspecified subtype

solvent-dependent DC I-V conductivity

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

tma2 zn ge4 s10 pressed pellet after 10 uL formamide · Pellet · Pressed-pellet I-V curves after solvent addition; solvents included hexanes, toluene, halogenated solvents, alcohols, water/EtOH mixtures, water, formamide.

Electrical TransportVariable temperature

temperature-dependent DC I-V Arrhenius analysis

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

TMA2FeGe4S10 pressed pellet after ortho-dichlorobenzene · Pellet · I-V curves from 30 to 65 C before and after ortho-dichlorobenzene treatment.

Electrical TransportVariable temperature

temperature-dependent DC I-V Arrhenius analysis

2022 · Solvent-controlled ion-coupled charge transport in microporous metal chalcogenides

tma2 fe ge4 s10 pressed pellet after 10 uL formamide · Pellet · I-V curves from 30 to 65 C before and after formamide treatment.

Electrical TransportFour contact

four-probe van der Pauw electrical conductivity

2022 · sp-Carbon Incorporated Conductive Metal-Organic Framework as Photocathode for Photoelectrochemical Hydrogen Generation

Cu3HHAE2 pressed powder pellet with four silver-wire probes · Pellet · Pressed pellet measured under vacuum at 298 K using a Lakeshore Hall System (9700A).

Electrical TransportVariable temperature

variable-temperature conductivity and Arrhenius analysis

2022 · sp-Carbon Incorporated Conductive Metal-Organic Framework as Photocathode for Photoelectrochemical Hydrogen Generation

Cu3HHAE2 pressed powder pellet with four silver-wire probes · Pellet · Electrical conductivity measured from 200 to 320 K and fitted to thermally activated hopping transport.

Electrical TransportUnspecified subtype

SI Table S3 substrate electrical-conductivity comparison

2022 · Stacked conductive metal–organic framework nanorods for high-performance vacuum electronic devices

Graphite paper substrate · Electrode · Electrical conductivities of graphite paper and literature substrate comparators for Cu-CAT growth feasibility.

ThermoelectricUnspecified subtype

SI Table S3 substrate thermal-conductivity comparison

2022 · Stacked conductive metal–organic framework nanorods for high-performance vacuum electronic devices

Graphite paper substrate · Electrode · Thermal conductivities of graphite paper and comparator substrates listed for Cu-CAT growth feasibility.

Electrical TransportFour contactVariable temperature

Four-point probe temperature-dependent resistivity in PPMS with dilution refrigerator

2022 · Structural, Thermodynamic, and Transport Properties of the Small-Gap Two-Dimensional Metal-Organic Kagomé Materials Cu3(hexaiminobenzene)2and Ni3(hexaiminobenzene)2

Cu3(HIB)2 densified pellet · Pellet · Measured at mu0H = 0, 3 and 5 T; specimen densified at >1000 bar; Pt wire and silver-paste contacts; contact resistance estimated <100 ohm per contact.

Electrical TransportFour contactVariable temperature

Four-point probe temperature-dependent resistivity in PPMS with dilution refrigerator

2022 · Structural, Thermodynamic, and Transport Properties of the Small-Gap Two-Dimensional Metal-Organic Kagomé Materials Cu3(hexaiminobenzene)2and Ni3(hexaiminobenzene)2

Ni3(HIB)2 densified pellet · Pellet · Measured at mu0H = 0, 3 and 5 T; specimen densified at >1000 bar; Pt wire and silver-paste contacts; contact resistance estimated <100 ohm per contact.

Electrical TransportFour contact

Four-point probe sheet resistance

2022 · Surface Structure Construction of Fibers in a Conductive Metal-Organic Framework/Metal/Cotton Electrode for Flexible Textile Supercapacitors

CPA Au-plated cotton/PDA current collector · Electrode · Measured with RTS-9 four-probe instrument.

Electrical TransportFour contact

Four-point probe sheet resistance

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 · Measured with RTS-9 four-probe instrument after Cu-MOF growth.

Electrical TransportFour contact

four-probe electrical powder resistivity/conductivity

2022 · Synthesis and Characterization of Schiff Base Polymers via Metal Coordination and Its Application in Infrared Stealth Coating

D230-PyAL-Cu coating · Thin Film · JG ST2742B electric powder resistivity tester; room-temperature condition implied but not explicitly stated for conductivity

Electrical TransportFour contact

four-probe electrical powder resistivity/conductivity

2022 · Synthesis and Characterization of Schiff Base Polymers via Metal Coordination and Its Application in Infrared Stealth Coating

D230-PyAL coating/polymer · Thin Film · JG ST2742B electric powder resistivity tester; room-temperature condition implied but not explicitly stated for conductivity

Electrical TransportFour contact

four-probe electrical powder resistivity/conductivity

2022 · Synthesis and Characterization of Schiff Base Polymers via Metal Coordination and Its Application in Infrared Stealth Coating

D230-PyAL-Ni coating · Thin Film · JG ST2742B electric powder resistivity tester; room-temperature condition implied but not explicitly stated for conductivity

Electrical TransportFour contact

four-probe electrical powder resistivity/conductivity

2022 · Synthesis and Characterization of Schiff Base Polymers via Metal Coordination and Its Application in Infrared Stealth Coating

D230-PyAL-Sm coating · Thin Film · JG ST2742B electric powder resistivity tester; room-temperature condition implied but not explicitly stated for conductivity

Electrical TransportTwo contact

two-contact probe conductivity

2022 · The Growth Mechanism of a Conductive MOF Thin Film in Spray-based Layer-by-layer Liquid Phase Epitaxy

HHTP powder pellet · Pellet · HHTP powder pellet measured by the same Keithley 4200 two-contact probe method at room temperature.

Electrical TransportTwo contact

two-contact probe DC I-V conductivity

2022 · The Growth Mechanism of a Conductive MOF Thin Film in Spray-based Layer-by-layer Liquid Phase Epitaxy

Cu3(HHTP)2-xC spray LBL-LPE thin-film growth-cycle series, x = 1-60 · Thin Film · Keithley 4200 semiconductor analysis system at room temperature; applied voltage -5 to 5 V with 0.1 V scan step; conductivity calculated as sigma = thickness/(A.R).

Electrical TransportFour contact

Four-probe bulk conductivity

2022 · Thousand-fold increase in O2electroreduction rates with conductive MOFs

As-synthesised Ni3(HITP)2 powder · Powder · Previously reported pristine M3(HITP)2 bulk conductivity values cited in the SI; not newly measured in this paper.

Electrical TransportFour contact

four-probe I-V conductivity

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L1 four-probe drop-cast glass film · Thin Film · Keithley 2450 source meter; drop-cast glass film, thickness 185 +/- 4 nm

Electrical TransportFour contact

four-probe I-V conductivity

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L2 four-probe drop-cast glass film · Thin Film · Keithley 2450 source meter; drop-cast glass film, thickness 185 +/- 4 nm

Electrical TransportFour contact

four-probe I-V conductivity

2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors

poly-Fe-L3 four-probe drop-cast glass film · Thin Film · Keithley 2450 source meter; drop-cast glass film, thickness 185 +/- 4 nm

Electrical TransportUnspecified subtype

Current-voltage measurement and conductivity extraction

2022 · Ultrathin MOF nanosheet-based resistive sensors for highly sensitive detection of methanol

Co-TCPP-Ac NS thin film-based sensor · Electrode · Electrical property of Co-TCPP-Ac NS thin film; I-V plots for bulk crystals and NSs in Fig. S4.

Electrical TransportTwo contact

Two-probe I-V conductivity on pressed pellet

2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat

Cu3HHTP2 pressed pellet · Pellet · Pressed pellet conductivity method described for all MOFs; conductivity label read from rendered Figure S7.

Electrical TransportTwo contact

Two-probe I-V conductivity on pressed pellet

2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat

Ni3HHTP2 pressed pellet · Pellet · Pressed 2.5 mm pellet; two parallel Au wire contacts; Keithley 4200-SCS; room temperature.

Electrical TransportTwo contact

Two-probe I-V conductivity on pressed pellet

2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat

Ni3HITP2 pressed pellet · Pellet · Pressed pellet conductivity method described for all MOFs; conductivity label read from rendered Figure S7.

Electrical TransportFour contactTwo contact

Two-probe or four-probe conductivity values compiled in Table 1

2021 · A comparative study of honeycomb-like 2D π-conjugated metal-organic framework chemiresistors: conductivity and channels

Cu-HITP pellet conductivity comparison sample · Pellet · Electrical conductivity comparison across cMOFs; most conductivity values are cited from earlier references, with measurement geometry specified in footnotes.

Electrical TransportTwo contact

Two-probe electronic conductivity

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 · Pressed disc with conductive silver adhesive; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

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 · Pressed disc with conductive silver adhesive; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

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 · Powder pressed into discs, connected by conductive silver adhesive; Keithley 4200A-SCS; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

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 · Pressed disc with conductive silver adhesive; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

2-Dy · Powder · Oxidised powder pressed into discs; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

2-Er · Powder · Oxidised powder pressed into discs; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

2-Gd · Powder · Oxidised powder pressed into discs; room temperature.

Electrical TransportTwo contact

Two-probe electronic conductivity

2021 · A family of lanthanide metal-organic frameworks based on a redox-active tetrathiafulvalene-dicarboxylate ligand showing slow relaxation of magnetisation and electronic conductivity

2-Tb · Powder · Oxidised powder pressed into discs; room temperature.

Electrical TransportTwo contact

two-probe DC current-voltage sweep

2021 · A New Electrically Conducting Metal–Organic Framework Featuring U-Shaped cis-Dipyridyl Tetrathiafulvalene Ligands

I2-treated sine-MOF pressed pellet · Pellet · Pressed pellet sandwiched between two Ag-coated stainless-steel electrodes; measured under ambient conditions between -1 and +1 V using Keithley 2400 sourcemeter; resistance from linear I-V slope and conductivity calculated as sigma = L/(R*A).

Electrical TransportTwo contact

two-probe DC current-voltage sweep

2021 · A New Electrically Conducting Metal–Organic Framework Featuring U-Shaped cis-Dipyridyl Tetrathiafulvalene Ligands

pristine sine-MOF pressed pellet · Pellet · Pressed pellet sandwiched between two Ag-coated stainless-steel electrodes; measured under ambient conditions between -1 and +1 V using Keithley 2400 sourcemeter; resistance from linear I-V slope and conductivity calculated as sigma = L/(R*A).

Electrical TransportTwo contact

two-probe DC current-voltage conductivity on pressed pellets

2021 · An Electrically Conducting Li-Ion Metal-Organic Framework

Li2-Mn-DOBDC pressed pellet · Pellet · 13 mm pellets cold-pressed at 10 tons under argon, pressed between carbon-coated aluminium foils, encapsulated in Swagelok cells; variable temperature in climatic chamber.

Electrical TransportTwo contact

Two-point-probe linear-sweep I-V conductivity

2021 · An Electrically Conducting Three-Dimensional Iron–Catecholate Porous Framework

Pressed Fe-HHTP-MOF pellet · Pellet · HMS-5000/AMP55T Ecopia Hall Effect Measurement System; ambient room temperature in the dark; main text voltage range -1.5 to 1.5 V, SI Figure S16 caption reports -9 to 9 V for additional measurements.

Electrical TransportFour contact

Four-point van der Pauw conductivity

2021 · An Electrically Conducting Three-Dimensional Iron–Catecholate Porous Framework

Pressed Fe-HHTP-MOF pellet · Pellet · HMS-5000/AMP55T Ecopia Hall Effect Measurement System; gold contacts in square geometry about 2.4 mm apart; ambient room temperature in the dark.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

1: (TCNE)0.38@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

10: (TCNE)0.60@Cd2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

2: (TCNE)0.81@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

3: (TCNE)0.46@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

4: (TCNE)0.86@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

5: (TCNE)0.50@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

6: (TCNE)0.82@Zn2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

7: (TCNE)0.47@Cd2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

8: (TCNE)0.58@Cd2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

9: (TCNE)0.47@Cd2TTFTB · Powder · Pressed-pellet conductivity measured at 25 deg C between -0.1 and +0.1 V; conductivity calculated from I-V slope and pellet geometry.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

activated Cd2TTFTB · Powder · Approximately 50 mg sample pressed into 1 cm diameter pellet between steel pistons/electrodes at 0.3 GPa; PGSTAT302N potentiostat; three cycles from -0.1 to +0.1 V starting at open-circuit voltage; pellet thickness measured after measurement.

Electrical TransportTwo contact

Two-point probe current-voltage measurement on pressed pellet

2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework

activated Zn2TTFTB · Powder · Approximately 50 mg sample pressed into 1 cm diameter pellet between steel pistons/electrodes at 0.3 GPa; PGSTAT302N potentiostat; three cycles from -0.1 to +0.1 V starting at open-circuit voltage; pellet thickness measured after measurement.

Electrical TransportFour contact

four-probe bulk conductivity

2021 · Cluster-Bridging-Coordinated Bimetallic Metal−Organic Framework as High-Performance Anode Material for Lithium-Ion Storage

Pressed Co4-Ir MOF powder pellet · Pellet · Pressed powder pellet, 4 mm diameter and 2 mm thickness, pressed at 1 MPa; stainless steel electrodes; Keithley 6430 source measurement unit.

Electrical TransportUnspecified subtype

literature-cited electronic conductivity statement

2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries

Ni-HHTP particles · Powder · Conductivity value for Ni-HHTP cited from prior work rather than measured in this article.

Electrical TransportTwo contactVariable temperature

temperature-dependent two-point I-V and Arrhenius plot

2021 · Conductive Stimuli-Responsive Coordination Network Linked with Bismuth for Chemiresistive Gas Sensing

Bi(HHTP) temperature-dependent I-V pellet · Pellet · Linear sweep -2.0 to +2.0 V from 293 to 383 K; ln(I) versus 1/T

Electrical TransportFour contact

four-point probe conductivity on pressed pellet

2021 · Conductive Stimuli-Responsive Coordination Network Linked with Bismuth for Chemiresistive Gas Sensing

Bi(HHTP) four-point-probe pressed pellet · Pellet · 0.100 g Bi(HHTP) powder compressed into 6 mm pellet; probe spacing 1.25 mm; correction factor F used in eq S2

Electrical TransportTwo contact

two-point digital multimeter conductivity screen

2021 · Conductive Stimuli-Responsive Coordination Network Linked with Bismuth for Chemiresistive Gas Sensing

HHTP precursor control · Powder · HHTP and Bi(OAc)3 precursor pellets; Extech EX430 maximum resistance limit 40 Mohm

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

Solution-sheared HKUST-1 thin film, 4 cycles · Thin Film · Au electrodes thermally evaporated in glove box; current-voltage curve measured for pristine HKUST-1 control.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 120 h TCNQ soak · Thin Film · I-V curve and conductivity after 120 h TCNQ loading.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 168 h TCNQ soak · Thin Film · I-V curve and conductivity after 168 h TCNQ loading.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 240 h (10 day) TCNQ soak · Thin Film · I-V curve and conductivity after 240 h / 10 day TCNQ loading.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 24 h TCNQ soak · Thin Film · I-V curve and conductivity after 24 h TCNQ loading.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 480 h TCNQ soak · Thin Film · I-V curve and conductivity after 480 h TCNQ loading.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 48 h TCNQ soak · Thin Film · I-V curve and conductivity after 48 h TCNQ loading; inset reports n = 4.

Electrical TransportUnspecified subtype

Current-voltage measurement using Keithley 2450 SMU

2021 · Conductive, Large-Area, and Continuous 7,7,8,8-Tetracyanoquinodimethane@HKUST-1 Thin Films Fabricated Using Solution Shearing

TCNQ@HKUST-1 thin film, 72 h TCNQ soak · Thin Film · I-V curve and conductivity after 72 h TCNQ loading.

Electrical TransportUnspecified subtype

electronic conductivity comparison

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

ZrBPD-4F4TS oxidised with deficient FeCl3 · Powder · 0.5:1 FeCl3/thiophene under-crosslinked sample

Electrical TransportTwo contact

two-probe electronic conductivity with multimeter

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

activated ZrBPD-4F4TS-Ox · Powder · sample pressed into 1.8 mm diameter glass mould pipe/disc; measured in air; Table S2

Electrical TransportTwo contact

two-probe electronic conductivity with multimeter

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

activated ZrBPD-4F4TS · Powder · sample pressed into 1.8 mm diameter glass mould pipe/disc; measured in air; Table S2

Electrical TransportUnspecified subtype

proton conductivity from impedance/Nyquist fitting

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

H2SO4@ZrBPD-4F4TS-Ox · Powder · 90% RH; frequency range 10 MHz to 1 Hz; fitted equivalent circuit in ZView; temperature series

Electrical TransportUnspecified subtype

proton conductivity from impedance/Nyquist fitting

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

activated ZrBPD-4F4TS-Ox · Powder · 90% RH; frequency range 10 MHz to 1 Hz; fitted equivalent circuit in ZView; temperature series

Electrical TransportUnspecified subtype

proton conductivity from impedance/Nyquist fitting

2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework

activated ZrBPD-4F4TS · Powder · 90% RH; frequency range 10 MHz to 1 Hz; fitted equivalent circuit in ZView; temperature series

Electrical TransportFour contact

four-contact probe I-V

2021 · Coordination environment dependent selectivity of single-site-Cu enriched crystalline porous catalysts in CO2 reduction to CH4

pressed Cu-DBC conductive sheet · Pellet · Pressed sheet measured at room temperature (25 deg C), ambient conditions, voltage -5.0 to 5.0 V

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportTwo contact

two-probe I-V on ligand control

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 · I-V plots of insulating/poorly conducting free ligands at 293 K.

Electrical TransportTwo contact

two-probe I-V on ligand control

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 · I-V plots of insulating/poorly conducting free ligands at 293 K.

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportTwo contact

two-probe current-voltage (I-V) conductivity on pressed pellets

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 · Ambient 293 K; in-situ pressed pellets from 3.5 mg material at 260 MPa for 1 min; Ag-coated stainless-steel rods; conductivity σ=L/RA; average of 3-5 devices.

Electrical TransportFour contact

Four-probe electrical conductivity measurement

2021 · Electrically Conductive Metal–Organic Framework Thin Film-Based On-Chip Micro-Biosensor: A Platform to Unravel Surface Morphology-Dependent Biosensing

Pristine Cu-BHT thin film · Thin Film · Cu-BHT thin films transferred on insulated Si/SiO2 with four parallel gold electrodes; channel length 50 um; Keithley 4200; constant current 1 uA; room temperature.

Electrical TransportUnspecified subtype

Flexible-device I-V and bending-resistance statistics

2021 · Electrochemical Synthesis of Large Area Two-Dimensional Metal–Organic Framework Films on Copper Anodes

Cu3(HHTP)2 film transferred to PEN flexible substrate · Thin Film · PEN substrate; curvature radius ca. 1.5 cm; ca. 40 um channel length; ca. 2400 um channel width; ca. 20 nm film.

Electrical TransportVariable temperature

Temperature-dependent normalised conductance/conductivity

2021 · Electrochemical Synthesis of Large Area Two-Dimensional Metal–Organic Framework Films on Copper Anodes

Cu3(HHTP)2 film transferred to SiO2/Si with Au source-drain electrodes · Thin Film · Conductivity normalised to conductivity at 300 K; plotted versus T and 1000/T.

Electrical TransportUnspecified subtype

two-terminal I-V

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) compressed pellet · Pellet · 293 K compressed pellet with carbon paste contacts and gold wires

Electrical TransportUnspecified subtype

two-terminal I-V

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)(H2O)2 compressed pellet · Pellet · 293 K compressed pellet with carbon paste contacts and gold wires

Electrical TransportFour contact

van der Pauw method (Lakeshore Hall Testing System)

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

BQ@Cu3(BTC)2 pressed pellet for conductivity · Pellet · Conductivity measured at 298 K by van der Pauw method after peeling film from Cu foil, grinding, pressing a 1.2 cm diameter, 300 um thick pellet under about 1 GPa, and contacting four silver wires with conductive silver paste/plastic.

Electrical TransportFour contact

van der Pauw method (Lakeshore Hall Testing System)

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

Cu3(BTC)2 pressed pellet for conductivity · Pellet · Conductivity measured at 298 K by van der Pauw method after peeling film from Cu foil, grinding, pressing a 1.2 cm diameter, 300 um thick pellet under about 1 GPa, and contacting four silver wires with conductive silver paste/plastic.

Electrical TransportFour contact

van der Pauw method (Lakeshore Hall Testing System)

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

PMDI@Cu3(BTC)2 pressed pellet for conductivity · Pellet · Conductivity measured at 298 K by van der Pauw method after peeling film from Cu foil, grinding, pressing a 1.2 cm diameter, 300 um thick pellet under about 1 GPa, and contacting four silver wires with conductive silver paste/plastic.

Electrical TransportFour contact

van der Pauw method (Lakeshore Hall Testing System)

2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors

TCNQ@Cu3(BTC)2 pressed pellet for conductivity · Pellet · Conductivity measured at 298 K by van der Pauw method after peeling film from Cu foil, grinding, pressing a 1.2 cm diameter, 300 um thick pellet under about 1 GPa, and contacting four silver wires with conductive silver paste/plastic.

Electrical TransportUnspecified subtype

Conductivity monitoring under air exposure and O2 annealing

2021 · Emergence of Metallic Conductivity in Ordered One-Dimensional Coordination Polymer Thin Films upon Reductive Doping

O2-treated Cu-DMD after H2 reduction · Electrode · H2-treated Cu-DMD exposed to ambient air; separately annealed in flowing O2 at 80-130 deg C and then exposed to air

Electrical TransportUnspecified subtype

Two-terminal DC conductance/conductivity during H2 annealing

2021 · Emergence of Metallic Conductivity in Ordered One-Dimensional Coordination Polymer Thin Films upon Reductive Doping

H2/He-reduced Cu-DMD film on interdigitated electrode array · Electrode · Autolab PGSTAT702 potentiostat; voltage sweep -0.5 to 0.5 V starting from 0 V; conductivity estimated from IDA geometry

Electrical TransportUnspecified subtype

Four-electrode I-V verification and impedance spectroscopy

2021 · Emergence of Metallic Conductivity in Ordered One-Dimensional Coordination Polymer Thin Films upon Reductive Doping

H2/He-reduced Cu-DMD film on interdigitated electrode array · Electrode · Four-electrode geometry width 1 mm and spacing 0.6 mm; impedance Bode plots on IDA arrays in low and high conductivity states

Electrical TransportFour contact

Four-point probe

2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing

HAB-treated Cu3(HAB)2, 10 min · Pellet · Conductivity time course during HAB treatment; value read from Figure 3b.

Electrical TransportFour contact

Four-point probe

2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing

HAB-treated Cu3(HAB)2, 15 min · Pellet · Conductivity time course during HAB treatment; value read from Figure 3b.

Electrical TransportFour contact

Four-point probe

2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing

HAB-treated Cu3(HAB)2, 5 min · Pellet · Conductivity time course during HAB treatment; value read from Figure 3b.

Electrical TransportFour contact

Four-point probe

2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing

HAB-treated Cu3(HAB)2, 60 min · Pellet · Conductivity time course during HAB treatment; value read from Figure 3b.

Electrical TransportTwo contact

two-probe capacitance versus frequency measurement

2021 · Exploration of semiconducting properties of Zn(ii)- And Cd(ii)-based coordination polymers with dicarboxylate of a chair-type backbone

Al/CP 1/ITO Schottky diode film · Electrode · Capacitance at saturation used to calculate dielectric constants for CP 1 and CP 2.

Electrical TransportUnspecified subtype

Impedance-derived total conductivity versus frequency

2021 · Fabrication of a halopyridine appended Co(II) based 1D coordination polymer for efficient charge transportation

Al/compound 1/ITO thin-film MS junction · Thin Film · Total conductivity calculated from impedance and fit/discussed using Jonscher's law at room temperature.

Electrical TransportUnspecified subtype

Current-voltage measurement and Schottky diode parameter extraction

2021 · Fabrication of a halopyridine appended Co(II) based 1D coordination polymer for efficient charge transportation

Al/compound 1/ITO thin-film MS junction · Thin Film · Bias voltage +/-1 V applied to Al/compound/ITO metal-semiconductor junction; room-temperature diode parameters extracted from I-V and ln I-V plots.

Electrical TransportUnspecified subtype

Room-temperature conductivity measurement.

2021 · From n- To p-Type Material: Effect of Metal Ion on Charge Transport in Metal-Organic Materials

Pd-HITP transport sample · Pellet · SI reports conductivity for Pd-HITP; detailed geometry not repeated.

Electrical TransportFour contact

Four-contact probe electrical conductivity

2021 · Immobilizing Redox-Active Tricycloquinazoline into a 2D Conductive Metal–Organic Framework for Lithium Storage

Pressed-pellet Cu-HHTQ sample · Pellet · Pressed pellet measured with Keithley 2002 multimeter; temperature-dependent conductivity.

Electrical TransportTwo contact

Two-point-probe electrical conductivity

2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks

pressed Cu3(HHTP)2 pellet · Pellet · Pressed between stainless-steel electrodes; loading 1.50-1.57 ton-force cm-2; resistance measured with Keithley 2000 multimeter.

Electrical TransportFour contact

Van der Pauw Hall effect

2021 · Interfacial Synthesis of Layer-Oriented 2D Conjugated Metal-Organic Framework Films toward Directional Charge Transport

Cu2[PcCu-O8] macroscopic van der Pauw device · Thin Film · Room temperature 300 K; perpendicular magnetic field swept from -4 T to 4 T

Electrical TransportTwo contact

Local lateral two-probe measurement in FET-style h-BN device

2021 · Interfacial Synthesis of Layer-Oriented 2D Conjugated Metal-Organic Framework Films toward Directional Charge Transport

Cu2[PcCu-O8] local lateral h-BN/FET contact device · Thin Film · Contacts separated 100-500 nm, widths 8 um; representative 400 nm pair; measured in LakeShore Probe station CRX-VF at room temperature and 3e-5 mbar with two Keithley 2450 source meters

Electrical TransportTwo contact

Two-probe lateral conductivity on 10 devices

2021 · Interfacial Synthesis of Layer-Oriented 2D Conjugated Metal-Organic Framework Films toward Directional Charge Transport

Cu2[PcCu-O8] edge-on MOF film · Thin Film · Ten two-probe devices with 300 um channel length

Electrical TransportFour contact

Van der Pauw DC conductivity

2021 · Interfacial Synthesis of Layer-Oriented 2D Conjugated Metal-Organic Framework Films toward Directional Charge Transport

Cu2[PcCu-O8] macroscopic van der Pauw device · Thin Film · Lakeshore Hall System 9700A; current scanned -10 nA to 10 nA; temperatures 256-310 K

Electrical TransportUnspecified subtype

Hall-effect measurement from current-voltage slopes at each magnetic field

2021 · Large Single Crystals of Two-Dimensional π-Conjugated Metal-Organic Frameworks via Biphasic Solution-Solid Growth

Ni-CAT-1 single-crystal basal-plane stencil-mask device · Electrode · Rxy obtained from Ixx-Vxy slope at each magnetic field; magnetic field swept forward and reverse; data averaged over 20 magnetic-field sweeps.

Electrical TransportVariable temperature

Temperature-dependent I-V characteristics and cool-down/warm-up conductivity

2021 · Large Single Crystals of Two-Dimensional π-Conjugated Metal-Organic Frameworks via Biphasic Solution-Solid Growth

Ni-CAT-1 single-crystal basal-plane stencil-mask device · Electrode · Fig. S15 reports three crystal conductivities, cool-down/warm-up behaviour, and I-V curves at 300-100 K; cooling/heating rate 4 K/min.

Electrical TransportTwo contact

Two-probe c-axis conductivity measurement

2021 · Large Single Crystals of Two-Dimensional π-Conjugated Metal-Organic Frameworks via Biphasic Solution-Solid Growth

Ni-CAT-1 out-of-plane two-probe device · Electrode · Out-of-plane two-probe device image and I-V curve reported in SI.

Electrical TransportFour contact

Four-probe pressed-pellet conductivity and temperature dependence

2021 · Large Single Crystals of Two-Dimensional π-Conjugated Metal-Organic Frameworks via Biphasic Solution-Solid Growth

Ni-CAT-1 pressed-pellet device · Pellet · Polycrystalline pressed pellet compared with single-crystal device; pellet prepared from powder pressed at 6.6 ton-force/cm2.

Electrical TransportFour contactVariable temperature

Four-probe and device conductivity measurement versus temperature; basal-plane single-crystal transport

2021 · Large Single Crystals of Two-Dimensional π-Conjugated Metal-Organic Frameworks via Biphasic Solution-Solid Growth

Ni-CAT-1 single-crystal basal-plane stencil-mask device · Electrode · Conductivity measured with Agilent 4156C or Keithley 2400 plus Agilent 34401A; temperature dependence in LN2 cryo-probe station or He cryostat.

Electrical TransportUnspecified subtype

room-temperature conductivity summary

2021 · Large-area synthesis of nanoscopic catalyst-decorated conductive MOF film using microfluidic-based solution shearing

Cu3(HHTP)2 thin film fabricated by MiCS · Thin Film · Conductivity of MiCS Cu3(HHTP)2 film reported in Supplementary Table 1

Electrical TransportUnspecified subtype

room-temperature conductivity summary

2021 · Large-area synthesis of nanoscopic catalyst-decorated conductive MOF film using microfluidic-based solution shearing

Pt@Cu3(HHTP)2 thin film, 100 uL/min Pt precursor · Thin Film · Conductivity of MiCS Pt@Cu3(HHTP)2 film reported in Supplementary Table 1

Electrical TransportUnspecified subtype

I-V curves after ageing

2021 · Layer-by-layer assembled dual-ligand conductive MOF nano-films with modulated chemiresistive sensitivity and selectivity

x mol% HITP doped Cu-HHTP-10C nanofilm series · Thin Film · I-V curves of 0.1, 0.5, 1.0, 5.0 and 10.0 mol% HITP-doped films measured 22 months after fabrication in dry air, 200 sccm.

Electrical TransportTwo contact

Cited two-probe pellet conductivity literature comparison

2021 · Layer-by-layer assembled dual-ligand conductive MOF nano-films with modulated chemiresistive sensitivity and selectivity

pristine Cu-HHTP literature pellet comparator · Pellet · Room-temperature two-probe pellet conductivities cited for pristine Cu-HHTP and Cu-HITP.

Electrical TransportUnspecified subtype

AC impedance conductivity

2021 · Macrocycle-Based Metal-Organic Frameworks with NO2-Driven On/Off Switch of Conductivity

MOF A-covered screen-printed gold electrode sheet · Electrode · AC impedance measured before and after NO2 adsorption on a thin layer of MOF A.

Electrical TransportUnspecified subtype

Current-voltage (I-V) curves

2021 · Macrocycle-Based Metal-Organic Frameworks with NO2-Driven On/Off Switch of Conductivity

MOF A-covered screen-printed gold electrode sheet · Electrode · MOF A and A-NO2 measured in Lake Shore TTPX Cryogenic Probe Station at 25 deg C and 1 bar.

Electrical TransportUnspecified subtype

I-V curves of aNi-HAB in air and vacuum

2021 · Missing-Linker 2D Conductive Metal Organic Frameworks for Rapid Gas Detection

aNi-HAB chemiresistive device · Electrode · Voltage sweep approximately -5 to +5 V, current read from SI Figure S4c.

Electrical TransportUnspecified subtype

I-V curves at different voltage sweep rates

2021 · MOF Nanosheet Reconstructed Two-Dimensional Bionic Nanochannel for Protonic Field-Effect Transistors

Cu-TCPP thin-film H+-FET device · Electrode · Cu-TCPP thin film with 10 deposition cycles tested in dry air and under 5% H2 plus 90% RH

Electrical TransportUnspecified subtype

AC impedance hydroxide ion conductivity

2021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches

NH2-UiO-66-0-OH · Pellet · Light on/off cycles at 55 deg C, 95% RH; visible light intensity 50 mW cm^-2.

Electrical TransportUnspecified subtype

AC impedance hydroxide ion conductivity

2021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches

NH2-UiO-66-100-OH · Pellet · Light on/off cycles at 55 deg C, 95% RH; visible light intensity 50 mW cm^-2.

Electrical TransportUnspecified subtype

AC impedance hydroxide ion conductivity

2021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches

NH2-UiO-66-10-OH · Pellet · Light on/off cycles at 55 deg C, 95% RH; visible light intensity 50 mW cm^-2.

Electrical TransportUnspecified subtype

AC impedance hydroxide ion conductivity

2021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches

NH2-UiO-66-50-OH · Pellet · Light on/off cycles at 55 deg C, 95% RH; visible light intensity 50 mW cm^-2.

Electrical TransportTwo contact

Two-probe I-V measurement

2021 · Oriented growth of semiconducting TCNQ@Cu3(BTC)2MOF on Cu(OH)2: crystallographic orientation and pattern formation toward semiconducting thin-film devices

Cu(OH)2 nanobelt film electrical control · Thin Film · Cu(OH)2 nanobelt film on polyimide measured with Pt pads 100 um apart; voltage swept -10 to 10 V.

Electrical TransportTwo contact

Two-probe I-V measurement

2021 · Oriented growth of semiconducting TCNQ@Cu3(BTC)2MOF on Cu(OH)2: crystallographic orientation and pattern formation toward semiconducting thin-film devices

Oriented TCNQ@Cu3(BTC)2 film measured parallel to {111} · Thin Film · Pt electrodes contacted with microprobes; voltage swept from -10 to 10 V using Keithley 4200A-SCS; Pt pads 100 um apart for plotted I-V; conductivity calculated with assumed 300 nm thickness.

Electrical TransportTwo contact

Two-probe I-V measurement

2021 · Oriented growth of semiconducting TCNQ@Cu3(BTC)2MOF on Cu(OH)2: crystallographic orientation and pattern formation toward semiconducting thin-film devices

Oriented TCNQ@Cu3(BTC)2 film measured vertical to {111} · Thin Film · Pt electrodes contacted with microprobes; voltage swept from -10 to 10 V using Keithley 4200A-SCS; Pt pads 100 um apart for plotted I-V; conductivity calculated with assumed 300 nm thickness.

Electrical TransportVariable temperature

Temperature-dependent I-V / Arrhenius analysis

2021 · Processable UiO-66 Metal-Organic Framework Fluid Gel and Electrical Conductivity of Its Nanofilm with Sub-100 nm Thickness

Al/UiO-66/Al thin-film devices · Electrode · Measured in conventional oven from 30 to 60 C; activation energy calculated from Arrhenius slope using SI eq S1.

Electrical TransportFour contact

Four-point probe electrical conductivity

2021 · Promoting ethylene production over a wide potential window on Cu crystallites induced and stabilized via current shock and charge delocalization

As-synthesised Cu3(HITP)2 powder · Powder · Room-temperature conductivity of as-synthesised Cu3(HITP)2.

Electrical TransportFour contact

Four-point probe conductivity/resistivity

2021 · Quinone-Based Conducting Three-Dimensional Metal-Organic Framework as a Cathode Material for Lithium-Ion Batteries

as-prepared (NBu4)2Fe2(DHBQ)3 powder/solid · Powder · Room-temperature four-point-probe measurement on pristine (NBu4)2Fe2(DHBQ)3.

Electrical TransportUnspecified subtype

Previously reported metal-CP junction I-V characteristic under dark and illuminated conditions.

2021 · Semiconducting properties of pyridyl appended linear dicarboxylate based coordination polymers: Theoretical prediction: Via DFT study

Compound 1 DFT crystal model · Model · Conductivity values are reproduced in this theoretical paper from prior experimental work; exact device fabrication and illumination details are not present in the main text.

Electrical TransportUnspecified subtype

Previously reported metal-CP junction I-V characteristic under dark and illuminated conditions.

2021 · Semiconducting properties of pyridyl appended linear dicarboxylate based coordination polymers: Theoretical prediction: Via DFT study

Compound 2 DFT crystal model · Model · Conductivity values are reproduced in this theoretical paper from prior experimental work; exact device fabrication and illumination details are not present in the main text.

Electrical TransportUnspecified subtype

Previously reported metal-CP junction I-V characteristic under dark and illuminated conditions.

2021 · Semiconducting properties of pyridyl appended linear dicarboxylate based coordination polymers: Theoretical prediction: Via DFT study

Compound 3 DFT crystal model · Model · Conductivity values are reproduced in this theoretical paper from prior experimental work; exact device fabrication and illumination details are not present in the main text.

Computational ModellingUnspecified subtype

Computed optical conductivity sigma(omega) versus photon energy for polarised light directions.

2021 · Semiconducting properties of pyridyl appended linear dicarboxylate based coordination polymers: Theoretical prediction: Via DFT study

Compound 1 DFT crystal model · Model · Photon energy range 0-16 eV; plotted real and imaginary parts for compounds 1-3. Measurement row is attached to compound 1 model; result names specify compounds 1-3.

Electrical TransportFour contact

Ecopia 7000 Photonic Hall measurement system, van der Pauw configuration

2021 · Semiconducting to Metallic Electronic Landscapes in Defects-Controlled 2D π-d Conjugated Coordination Polymer Thin Films

Cu-BHT thin film from solid-vapor interfacial CVD polymerization growth · Thin Film · Temperature-dependent electrical conductivity of S-V CVD Cu-BHT thin film; uncertainty from standard deviation of three data sets

Electrical TransportFour contact

Ecopia 7000 Photonic Hall measurement system, van der Pauw configuration

2021 · Semiconducting to Metallic Electronic Landscapes in Defects-Controlled 2D π-d Conjugated Coordination Polymer Thin Films

Cu-BHT thin film from vapor-vapor interfacial CVD polymerization growth · Thin Film · Temperature-dependent electrical conductivity of V-V CVD Cu-BHT thin film; uncertainty from standard deviation of three data sets

Electrical TransportFour contact

four-contact probe conductivity

2021 · Soft Electrochemical Actuators with a Two-Dimensional Conductive Metal-Organic Framework Nanowire Array

functionalised carbon nanofiber film · Thin Film · CNF control electrode measured with Keithley 2400 at 300 K in ambient atmosphere.

Electrical TransportFour contact

four-contact probe conductivity

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 and CNF electrodes measured with Keithley 2400 at 300 K in ambient atmosphere.

Electrical TransportFour contact

Four-point-probe resistance measurement; I-V curve

2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework

Freestanding CCM film · Thin Film · Electrical resistance measured in a four-point-probe station; Fig. S2e reports I-V curve.

Electrical TransportUnspecified subtype

I-V curve slope comparison

2021 · Sulfur vacancies enriched Nickel-Cobalt sulfides hollow spheres with high performance for All-Solid-State hybrid supercapacitor

r-NiCo2S4-6 HSs · Powder · Intrinsic electrical conductivity inferred from slopes of I-V curves in Fig. S11.

Electrical TransportUnspecified subtype

AC conductivity calculated from dielectric loss

2021 · Synthesis, identification and application of metal organic framework for removal of industrial cationic dyes

ZIF-7 sample for AC measurements · Unknown · sigma_ac calculated as function of temperature and frequency; 310-480 K and 50 Hz-1.2 MHz.

Electrical TransportFour contact

Four-probe conductivity on pressed pellet

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Co-MOF pressed pellet · Pellet · Co-MOF pressed into around 300 micrometer pellet at 20 MPa; average resistance measured by four-probe instrument; conductivity = 1/(R x t).

Electrical TransportFour contact

Four-probe conductivity on pressed pellet

2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors

Mn-MOF pressed pellet · Pellet · Mn-MOF pressed into around 300 micrometer pellet at 20 MPa; average resistance measured by four-probe instrument; conductivity = 1/(R x t).

Electrical TransportUnspecified subtype

impedance spectroscopy conductivity isotherms

2021 · The Origins of Ion Conductivity in MOF-Ionic Liquids Hybrid Solid Electrolytes

MIL-121/Li · Pellet · Concept 80 / Alpha-A impedance analyser with active ZGS cell; 1e7 to 1e-2 Hz, 0.1 V AC, -90 to 110 deg C, every 20 deg C on cooling

Electrical TransportUnspecified subtype

impedance spectroscopy conductivity isotherms

2021 · The Origins of Ion Conductivity in MOF-Ionic Liquids Hybrid Solid Electrolytes

MIL-121 + IL · Pellet · Supplementary conductivity isotherms from 110 to -90 deg C in 20 deg C steps for Li-free MIL-121 with EMIM-TFSI.

Electrical TransportUnspecified subtype

impedance spectroscopy conductivity isotherms

2021 · The Origins of Ion Conductivity in MOF-Ionic Liquids Hybrid Solid Electrolytes

MIL-121 + IL + LiTFSI · Pellet · Supplementary conductivity isotherms from 110 to -90 deg C in 20 deg C steps for Li-free MIL-121 with 0.4 M LiTFSI in EMIM-TFSI.

Electrical TransportUnspecified subtype

impedance spectroscopy conductivity isotherms

2021 · The Origins of Ion Conductivity in MOF-Ionic Liquids Hybrid Solid Electrolytes

MIL-121/Li + IL + LiTFSI · Pellet · Supplementary conductivity isotherms from 110 to -90 deg C in 20 deg C steps for MIL-121/Li with 0.4 M LiTFSI in EMIM-TFSI.

Electrical TransportTwo contact

Two-contact bulk conductivity on pressed pellet

2021 · Two-dimensional d-π conjugated metal-organic framework based on hexahydroxytrinaphthylene

pressed Cu3(HHTN)2 pellet · Pellet · Pressed pellet measured from 298 to 385 K under constant 4.0 V bias; conductivity calculated using sigma = I L/(V A).

Electrical TransportUnspecified subtype

time-dependent proton conductivity measurement

2021 · Ultra-Stable Metal-Organic Framework with Concurrent High Proton Conductivity and Fluorescence Sensing for Nitrobenzene

compressed microcrystalline pellet of compound 1 · Pellet · 70 °C and 100% RH for 8 h

Electrical TransportUnspecified subtype

current-voltage measurement

2021 · Uniaxially Oriented Electrically Conductive Metal-Organic Framework Nanosheets Assembled at Air/Liquid Interfaces

HATP-water-NS 10-cycle control device · Electrode · HATP-water-NS control with 10 deposition cycles on SiO2/Si.

Electrical TransportUnspecified subtype

two-terminal current-voltage measurement

2021 · Uniaxially Oriented Electrically Conductive Metal-Organic Framework Nanosheets Assembled at Air/Liquid Interfaces

HITP-Ni-NS-2c top-contact device · Electrode · HITP-Ni-NS with 2 deposition cycles on SiO2/Si.

Electrical TransportUnspecified subtype

two-terminal current-voltage measurement

2021 · Uniaxially Oriented Electrically Conductive Metal-Organic Framework Nanosheets Assembled at Air/Liquid Interfaces

HITP-Ni-NS-5c top-contact device · Electrode · Keithley 4200-SCS in the dark; room-temperature planar conductivity; 40 nm Au contacts, channel length 100 um, width 2 mm.

Electrical TransportTwo contact

AC impedance spectroscopy, two-probe method, Solartron 1260/1296A, 1 Hz to 10 MHz

2021 · Vapor-Induced Superionic Conduction of Magnesium Ions in a Metal-Organic Framework

Mg-MOF-74 superset {Mg(TFSI)2}0.15 · Powder · Compressed powder pellet with two porous silver electrodes in a home-made sealed cell; dried under N2 at 130 deg C overnight; measured under dry N2 or anhydrous guest vapours from N2 bubbling over solvents, 19-34 deg C.

Electrical TransportFour contact

4-point probe conductivity/resistivity

2020 · A conductive anionic Co-MOF cage with zeolite framework for supercapacitors

Co-MOF on Ni foam · Electrode · Experimental conductivity data are said to be listed in Supporting Information Table S1; main text reports the calculated average conductivity.

Electrical TransportUnspecified subtype

EIS conductivity after SSP immersion

2020 · A Light-Responsive Metal–Organic Framework Hybrid Membrane with High On/Off Photoswitchable Proton Conductivity

ZIF-8 membrane after external SSP immersion · Thin Film · Pristine ZIF-8 and ZIF-8 after 12 h immersion in 0.03 wt% SSP aqueous solution compared at different temperatures.

Electrical TransportUnspecified subtype

Cheung analysis of forward I-V characteristics

2020 · Application of two Cu(II)-azido based 1D coordination polymers in optoelectronic device: Structural characterization and experimental studies

ITO/complex 1/Al thin-film Schottky device · Thin Film · dV/d(ln I) vs I and H(I) vs I plots under dark and illumination conditions; device parameters listed in rendered SI Table S1.

Electrical TransportUnspecified subtype

Cheung analysis of forward I-V characteristics

2020 · Application of two Cu(II)-azido based 1D coordination polymers in optoelectronic device: Structural characterization and experimental studies

ITO/complex 2/Al thin-film Schottky device · Thin Film · dV/d(ln I) vs I and H(I) vs I plots under dark and illumination conditions; device parameters listed in rendered SI Table S2.

Electrical TransportTwo contact

Two-probe current-voltage measurement

2020 · Application of two Cu(II)-azido based 1D coordination polymers in optoelectronic device: Structural characterization and experimental studies

ITO/complex 1/Al thin-film Schottky device · Thin Film · Keithley 4200; dark and 1 Sun illumination; voltage range -1 to +1 V.

Electrical TransportTwo contact

Two-probe current-voltage measurement

2020 · Application of two Cu(II)-azido based 1D coordination polymers in optoelectronic device: Structural characterization and experimental studies

ITO/complex 2/Al thin-film Schottky device · Thin Film · Keithley 4200; dark and 1 Sun illumination; voltage range -1 to +1 V.

Electrical TransportTwo contact

Two-probe current-voltage (I-V) measurement with Keithley 2635B sourcemeter

2020 · Biporous Cd(II) Coordination Polymer via in Situ Disulfide Bond Formation: Self-Healing and Application to Photosensitive Optoelectronic Device

ITO/compound 1/Al sandwich-structured MS junction device · Electrode · Bias voltage within +/-2 V; dark and illumination conditions; photoconductivity measured under 100 mW cm-2 intensity.

Electrical TransportTwo contact

Two-probe I-V leakage-control measurement

2020 · Biporous Cd(II) Coordination Polymer via in Situ Disulfide Bond Formation: Self-Healing and Application to Photosensitive Optoelectronic Device

ITO/Al structured leakage-control device · Electrode · ITO/Al device without coordination polymer compared qualitatively with Al/compound 1/ITO device.

Computational ModellingUnspecified subtype

3D bond percolation / interrupted strand conductivity model

2020 · Conductive Metal-Organic Framework Thin Film Hybrids by Electropolymerization of Monosubstituted Acetylenes

DFT/percolation model of BPA@Cu(BDC) SURMOF · Model · Conductivity model where polymers occupy sites in a cubic lattice defined by the MOF; charges move along chains or hop between polymers; assumes sigma_parallel much greater than sigma_perpendicular.

Electrical TransportUnspecified subtype

Current-voltage measurement

2020 · Conductive Metal-Organic Framework Thin Film Hybrids by Electropolymerization of Monosubstituted Acetylenes

BPA@Cu(BDC)-SURMOF-2 after electropolymerisation · Electrode · Keithley 2635B SourceMeter; pure nitrogen; sample equilibrated at least 2 h in nitrogen before measurement; room temperature.

Electrical TransportUnspecified subtype

Current-voltage measurement

2020 · Conductive Metal-Organic Framework Thin Film Hybrids by Electropolymerization of Monosubstituted Acetylenes

Pristine Cu(BDC) SURMOF-2 thin-film device · Electrode · Keithley 2635B SourceMeter; pure nitrogen; sample equilibrated at least 2 h in nitrogen before measurement; room temperature.

Electrical TransportFour contact

Four-point probe electrical conductivity

2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction

Compressed Ni3(Ni3.HAHATN)2 nanosheet pellet · Pellet · Compressed pellet of Ni3(Ni3.HAHATN)2 nanosheets measured by four-point probe.

Electrical TransportFour contact

four-point probe conductivity

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

[Ni6(HHTP)3(H2O)x]n powder/crystals · Powder · Room-temperature conductivity of resultant catalyst measured using ST2722 and ST2643.

Electrical TransportFour contact

four-point probe conductivity

2020 · Conductive MOFs as bifunctional oxygen electrocatalysts for all-solid-state Zn-air batteries

[Ni5.7Ru0.3(HHTP)3(H2O)x]n powder · Powder · Room-temperature conductivity of Ru-doped Ni-HHTP catalyst measured using ST2722 and ST2643.

Electrical TransportUnspecified subtype

Two-terminal I-V conductivity on pressed pellets

2020 · Conjugated Copper–Catecholate Framework Electrodes for Efficient Energy Storage

Pelletised Cu-DBC crystalline powder · Pellet · Keithley 2636B SourceMeter in air at room temperature; voltage scanned -5.0 to 5.0 V; conductivity calculated as sigma = (I/V) x (d/A).

Electrical TransportVariable temperature

Variable-temperature conductivity

2020 · Conjugated Copper–Catecholate Framework Electrodes for Efficient Energy Storage

Pelletised Cu-DBC crystalline powder · Pellet · 0.59 mm Cu-DBC pellet in air; 273-313 K; temperature raised in 3 C increments every 30 min in sealed chamber.

Electrical TransportTwo contact

Two-probe current-voltage measurement with Keithley 2635B source meter; thermionic-emission and Cheung-equation analysis

2020 · Construction of a Succinate-Bridged Cd(II)-Based Two-Dimensional Coordination Polymer for Efficient Optoelectronic Device Fabrication and Explosive Sensing Application

ITO/compound 1/Al sandwich Schottky diode thin-film device · Thin Film · ITO/compound 1/Al Schottky device; -2 to +2 V at room temperature; dark and 1000 W m-2 illumination/photo condition.

Electrical TransportVariable temperature

Temperature-dependent I-V conductivity measurement

2020 · Construction of a Succinate-Bridged Cd(II)-Based Two-Dimensional Coordination Polymer for Efficient Optoelectronic Device Fabrication and Explosive Sensing Application

ITO/compound 1/Al sandwich Schottky diode thin-film device · Thin Film · Dark-condition conductivity at room temperature/303 K, 333 K, 363 K and 393 K.

ThermoelectricUnspecified subtype

Electrical conductivity and Seebeck coefficient vs temperature

2020 · Controlling the Thermoelectric Properties of Organometallic Coordination Polymers via Ligand Design

pristine Ni-btt freestanding pellet · Pellet · Freestanding pristine pellet; Figure 4 black data points across approximately 293-363 K for conductivity and 305-385 K for Seebeck coefficient.

ThermoelectricUnspecified subtype

Electrical conductivity and Seebeck coefficient vs temperature

2020 · Controlling the Thermoelectric Properties of Organometallic Coordination Polymers via Ligand Design

pristine Ni-diett freestanding pellet · Pellet · Freestanding pristine pellet; Figure 4 black data points across approximately 293-363 K for conductivity and 305-385 K for Seebeck coefficient.

ThermoelectricUnspecified subtype

Electrical conductivity and Seebeck coefficient vs temperature

2020 · Controlling the Thermoelectric Properties of Organometallic Coordination Polymers via Ligand Design

pristine Ni-ett freestanding pellet · Pellet · Freestanding pristine pellet; Figure 4 black data points across approximately 293-363 K for conductivity and 305-385 K for Seebeck coefficient.

Electrical TransportTwo contact

Two-contact pressed-pellet I-V conductivity

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

HoHHTP pressed pellet · Pellet · Two-contact probe at 302 K in dry N2 glovebox; powder compressed between stainless-steel rods; linear I-V curves collected after repeated tightening/relaxation.

Electrical TransportVariable temperature

Variable-temperature conductance and I-V

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

HoHHTP pressed pellet · Pellet · PPMS DynaCool electrical transport; two cycles of cooling/heating, resistance in AC mode every 5 K and I-V at intervals; presented data above 200 K.

Electrical TransportTwo contact

Two-contact pressed-pellet I-V conductivity

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

LaHHTP pressed pellet · Pellet · Two-contact probe at 302 K in dry N2 glovebox; powder compressed between stainless-steel rods; linear I-V curves collected after repeated tightening/relaxation.

Electrical TransportVariable temperature

Variable-temperature conductance and I-V

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

LaHHTP pressed pellet · Pellet · PPMS DynaCool electrical transport; two cycles of cooling/heating, resistance in AC mode every 5 K and I-V at intervals; presented data above 200 K.

Electrical TransportTwo contact

Two-contact pressed-pellet I-V conductivity

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

NdHHTP pressed pellet · Pellet · Two-contact probe at 302 K in dry N2 glovebox; powder compressed between stainless-steel rods; linear I-V curves collected after repeated tightening/relaxation.

Electrical TransportVariable temperature

Variable-temperature conductance and I-V

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

NdHHTP pressed pellet · Pellet · PPMS DynaCool electrical transport; two cycles of cooling/heating, resistance in AC mode every 5 K and I-V at intervals; presented data above 200 K.

Electrical TransportTwo contact

Two-contact pressed-pellet I-V conductivity

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

YbHHTP pressed pellet · Pellet · Two-contact probe at 302 K in dry N2 glovebox; powder compressed between stainless-steel rods; linear I-V curves collected after repeated tightening/relaxation.

Electrical TransportVariable temperature

Variable-temperature conductance and I-V

2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks

YbHHTP pressed pellet · Pellet · PPMS DynaCool electrical transport; two cycles of cooling/heating, resistance in AC mode every 5 K and I-V at intervals; presented data above 200 K.

Electrical TransportTwo contact

Two-contact probe current-voltage measurement

2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate

Activated Eu6HOTP2 pressed pellets, batch 1 · Pellet · Pressed pellets in dry nitrogen-filled glovebox; powder compressed between stainless-steel rods; voltage generally swept between -1 and +1 V.

Electrical TransportTwo contact

Two-contact probe current-voltage measurement

2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate

Activated Y6HOTP2 pressed pellets, batch 1 · Pellet · Pressed pellets in dry nitrogen-filled glovebox; powder compressed between stainless-steel rods; voltage generally swept between -1 and +1 V; resistance stabilised by repeated pressurised standing and retightening.

Electrical TransportTwo contact

Two-contact probe current-voltage measurement

2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate

Activated Y6HOTP2 pressed pellets, batch 2 · Pellet · Pressed pellets in dry nitrogen-filled glovebox; powder compressed between stainless-steel rods; voltage generally swept between -1 and +1 V.

Electrical TransportTwo contact

Two-contact probe current-voltage measurement

2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate

Activated Y6HOTP2 pressed pellets, batch 3 · Pellet · Pressed pellets in dry nitrogen-filled glovebox; powder compressed between stainless-steel rods; voltage generally swept between -1 and +1 V.

Diffraction StructureUnspecified subtype

PXRD after conductivity measurement

2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate

Activated Y6HOTP2 pressed pellets, batch 1 · Pellet · Pressed pellet compared with original activated powder after electrical conductivity measurements.

Electrical TransportTwo contact

two-probe current-voltage conductivity

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

In-situ pressed HATHCN ligand pellet · Pellet · Free HATHCN in-situ pressed pellets measured at 293 K under the same two-probe pressed-pellet method as the MOF.

Electrical TransportTwo contact

two-probe current-voltage conductivity

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

In-situ pressed [Ag2(HATHCN)(CF3SO3)2]n pellet · Pellet · In-situ pressed pellets measured under ambient conditions at 293 K; two Ag-coated stainless-steel electrodes in Teflon tube; resistance from I-V slope; sigma = L/(R A), A = 0.057 cm2.

Electrical TransportTwo contactVariable temperature

temperature-dependent two-probe I-V and Arrhenius analysis

2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities

In-situ pressed [Ag2(HATHCN)(CF3SO3)2]n pellet · Pellet · Variable-temperature I-V measurements shown for 293 K initial, 303 K, 313 K, 323 K, 333 K, and returned 293 K; Arrhenius plot used to determine activation energy.

Electrical TransportUnspecified subtype

I-V curves

2020 · Electrochemical deposition and thermoelectric characterisation of a semiconducting 2-D metal-organic framework thin film

Cu3(HHTP)2 pressed pellet · Pellet · Four probes A-D placed on pellet

Electrical TransportUnspecified subtype

I-V curves

2020 · Electrochemical deposition and thermoelectric characterisation of a semiconducting 2-D metal-organic framework thin film

PMMA-transferred Cu3(HHTP)2 thin film · Thin Film · Electrical contacts between PMMA transferred Cu3(HHTP)2 thin films and instrument probes

Electrical TransportTwo contact

Two-probe I-V measurement

2020 · Enhancement in electrical conductivity of a porous indium based metal-organic framework upon I2 uptake: Combined experimental and theoretical investigations

I2@1 pellet for two-probe I-V · Pellet · Contacts made on either side of iodine-loaded pellet; I-V curve linear.

Electrical TransportTwo contact

Two-probe I-V measurement

2020 · Enhancement in electrical conductivity of a porous indium based metal-organic framework upon I2 uptake: Combined experimental and theoretical investigations

compound 1 pellet for two-probe I-V · Pellet · Contacts made on either side of a pellet; pristine compound 1 measured with two instruments.

Electrical TransportUnspecified subtype

Conductivity stability assessment

2020 · High Thermopower in a Zn-Based 3D Semiconductive Metal-Organic Framework

Cold-pressed Zn-HAB pellet · Pellet · Pellets stored under vacuum or nitrogen glovebox; air exposure discussed via PESA-derived HOMO level.

Electrical TransportFour contact

Van der Pauw conductivity from four-probe I-V curves

2020 · High Thermopower in a Zn-Based 3D Semiconductive Metal-Organic Framework

Cold-pressed Zn-HAB pellet · Pellet · LakeShore CRX-6.5K probe station; pressure below 2 x 10^-4 mbar; current swept -1.4 to +1.4 uA in 0.4 uA steps; resistances from linear regression of I-V curves.

Electrical TransportFour contact

four-point probe

2020 · Highly Conductive Two-Dimensional Metal-Organic Frameworks for Resilient Lithium Storage with Superb Rate Capability

as-prepared Cu-BHT powder · Powder · room temperature, 25 deg C, JANDEL RM3000+

Electrical TransportUnspecified subtype

current-voltage characteristic

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 · electrical conductivity capacity after electrochemical reduction

Electrical TransportTwo contact

two-contact probe current-voltage measurement

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

Pristine CuHHTP black powder · Powder · room temperature

Electrical TransportUnspecified subtype

Arrhenius analysis of proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

large Co-MOF-74 single crystals · Single Crystal · Linear regression of ln(T sigma) versus T^-1 at 90% r.h.; activation energies reported for c-axis and orthogonal transport.

Electrical TransportUnspecified subtype

AC impedance-derived proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

Co-74_1 single crystal · Single Crystal · 25 C, 92% r.h.; current direction along c axis and orthogonal to c axis.

Electrical TransportUnspecified subtype

AC impedance-derived proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

Co-74_2 single crystal · Single Crystal · 21 C; along c axis; relative humidity varied from 75% to 90%.

Electrical TransportUnspecified subtype

AC impedance-derived proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

Co-74_3 single crystal · Single Crystal · Along c axis; 90% r.h.; temperature varied from 22 C to 30 C.

Electrical TransportUnspecified subtype

AC impedance-derived proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

Co-74_4 single crystal · Single Crystal · Orthogonal to c axis; 90% r.h.; temperature varied from 21 C to 30 C.

Electrical TransportUnspecified subtype

AC impedance-derived proton conductivity

2020 · Humidity-mediated anisotropic proton conductivity through the 1d channels of co-mof-74

Co-74_5 single crystal · Single Crystal · Along c axis; humidity series at 30 C and temperature series at 90% r.h. from 30 C to 60 C.

Electrical TransportTwo contact

two-probe pressed-pellet conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 4 as-synthesised pressed pellet · Pellet · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Native/as-synthesised network 4 pressed pellet.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 4 as-synthesised single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Native/as-synthesised network 4.

Electrical TransportTwo contact

two-probe pressed-pellet conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 4 iodine-treated pressed pellet · Pellet · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Iodine-treated network 4 pressed-pellet devices.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 4 iodine-treated single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Iodine-treated network 4 measured along b axis.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 4 iodine-treated single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Iodine-treated network 4 measured along c axis.

Electrical TransportTwo contact

two-probe pressed-pellet conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 5 as-synthesised pressed pellet · Pellet · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Native/as-synthesised network 5 pressed pellet.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 5 as-synthesised single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Native/as-synthesised network 5.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 5 iodine-treated single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Iodine-treated network 5 measured along b axis.

Electrical TransportTwo contact

two-probe single-crystal conductivity

2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks

Network 5 iodine-treated single crystal · Single Crystal · Two-probe conductivity; Keithley 2450 sourcemeter; ambient 296 K; voltage swept from -0.5 to +0.5 V. Iodine-treated network 5 measured along c axis.

Electrical TransportTwo contact

two-contact probe pressed-pellet conductivity

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

Cd two-contact pressed pellet · Pellet · home-built two-probe in situ press; powder under approximately 200 MPa

Electrical TransportTwo contact

two-contact probe single-crystal conductivity

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

Cd diffraction-quality/single-crystal device crystals · Single Crystal · I-V sweep with Keithley 2450; crystal contacted along c crystallographic axis

Electrical TransportTwo contact

two-contact probe pressed-pellet conductivity

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

Mn two-contact pressed pellet · Pellet · home-built two-probe in situ press; powder under approximately 200 MPa

Electrical TransportTwo contact

two-contact probe single-crystal conductivity

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

Mn diffraction-quality/single-crystal device crystals · Single Crystal · I-V sweep with Keithley 2450; crystal contacted along c crystallographic axis

Electrical TransportTwo contact

two-contact probe pressed-pellet conductivity

2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways

Zn two-contact pressed pellet · Pellet · home-built two-probe in situ press; powder under approximately 200 MPa

Electrical TransportUnspecified subtype

DC I-V and EIS MIEC analysis

2020 · Mixed Anionic and Cationic Redox Chemistry in a Tetrathiomolybdate Amorphous Coordination Framework

<Na2MoS4> cold-pressed pellet · Pellet · Two-probe DC I-V from 0.01 to -0.01 V at 2 mV s-1; EIS from 10^6 to 0.1 Hz; temperatures -60 to 80 C in 20 C steps with 30 min stabilisation.

Electrical TransportUnspecified subtype

DC I-V and EIS MIEC analysis

2020 · Mixed Anionic and Cationic Redox Chemistry in a Tetrathiomolybdate Amorphous Coordination Framework

Na2MoS4.3.5H2O cold-pressed pellet · Pellet · Two-probe DC I-V and EIS over -60 to 80 C; EIS fitted with transmission-line model to separate ionic and electronic rails.

Electrical TransportTwo contact

two-probe direct-current electrical conductivity

2020 · Multifunctional coordination polymers based on copper(i) and mercaptonicotinic ligands: Synthesis, and structural, optical and electrical characterization

CP1 orange/red single crystals · Single Crystal · individual CP1 crystals contacted with graphite conductive ink and two Pt tips; voltage swept from -10.0 to +10.0 V; final value averaged over at least three crystals

Electrical TransportTwo contactVariable temperature

temperature-dependent two-probe DC conductivity/resistivity

2020 · Multifunctional coordination polymers based on copper(i) and mercaptonicotinic ligands: Synthesis, and structural, optical and electrical characterization

CP1 orange/red single crystals · Single Crystal · CP1 measured in the voltage range where crystals are ohmic conductors from 300 to 400 K with warming rate 1.0 K min^-1

Electrical TransportTwo contact

two-probe direct-current electrical conductivity

2020 · Multifunctional coordination polymers based on copper(i) and mercaptonicotinic ligands: Synthesis, and structural, optical and electrical characterization

CP2 orange/red crystals · Single Crystal · individual CP2 crystals contacted with graphite conductive ink and two Pt tips; voltage swept from -10.0 to +10.0 V; final value averaged over at least three crystals

Electrical TransportTwo contact

two-probe direct-current electrical conductivity

2020 · Multifunctional coordination polymers based on copper(i) and mercaptonicotinic ligands: Synthesis, and structural, optical and electrical characterization

CP3 yellow crystals from method A · Single Crystal · individual CP3 crystals contacted with graphite conductive ink and two Pt tips; voltage swept from -10.0 to +10.0 V; final value averaged over at least three crystals

Electrical TransportFour contact

Four-contact probe electrical conductivity

2020 · Nanorods of a novel highly conductive 2D metal-organic framework based on perthiolated coronene for thermoelectric conversion

Ni-PTC compressed cuboid pellet for electrical conductivity and Seebeck measurements · Pellet · Temperature-dependent conductivity measured on pressed cuboid pellets; environment controlled by CTI Cryogenics refrigerator.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity

2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure

Co-THBQ pressed cuboid pellet · Pellet · Pressed cuboid pellet measured with KEITHLEY 2002 multimeter; temperature range 300-400 K.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity

2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure

Fe-THBQ pressed cuboid pellet · Pellet · Pressed cuboid pellet measured with KEITHLEY 2002 multimeter; temperature range 300-400 K.

Electrical TransportFour contactVariable temperature

Four-probe variable-temperature conductivity

2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure

Mn-THBQ pressed cuboid pellet · Pellet · Pressed cuboid pellet measured with KEITHLEY 2002 multimeter; temperature range 300-400 K.

Electrical TransportUnspecified subtype

AC impedance proton conductivity under varied pelletisation torque

2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF

beta-PCMOF21-Br torque-control pellet · Pellet · Equal portions of beta-PCMOF21-Br equilibrated 3 days at 85 deg C and 95% RH under 0.2-0.5 N m, then increased by 0.05 N m and equilibrated another 3 days before measurement.

Electrical TransportUnspecified subtype

AC impedance proton conductivity, second cycle

2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF

as-synthesised PCMOF21-AcO bulk powder · Powder · As-synthesised unsieved powder; 85 deg C, 95% RH, air, 0.4 N m; second cycle result in Table 2.

Electrical TransportUnspecified subtype

AC impedance proton conductivity, second cycle

2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF

PCMOF21-AcO >210 um particle fraction · Pellet · >210 um sieved fraction; 85 deg C, 95% RH, air, 0.4 N m; second cycle result in Table 2.

Electrical TransportUnspecified subtype

AC impedance proton conductivity, second cycle

2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF

PCMOF21-AcO <38 um particle fraction · Pellet · <38 um sieved fraction; 85 deg C, 95% RH, air, 0.4 N m; second cycle result in Table 2.

Electrical TransportUnspecified subtype

AC impedance proton conductivity, second cycle

2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF

PCMOF21-AcO 125 <= x < 180 um particle fraction · Pellet · 125 <= x < 180 um sieved fraction; 85 deg C, 95% RH, air, 0.4 N m; second cycle result in Table 2.

Electrical TransportUnspecified subtype

Single-crystal conductivity by clamping individual crystals between circular gold relay contacts and measuring resistance with a voltmeter.

2020 · Phosphonate Metal–Organic Frameworks: A Novel Family of Semiconductors

Hand-picked TUB75 crystals · Single Crystal · Room-temperature measurements; flat side of crystal between 1 mm diameter gold contacts; approximate 1 mm2 flat contact area; crystal orientation varied relative to gold surfaces.

Electrical TransportUnspecified subtype

AC impedance spectroscopy; proton conductivity

2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing

pelletised ZZU-1 · Pellet · Pellet; 1 Hz to 1 MHz, 100 mV, quasi-four-probe Pt electrodes; 25-100 deg C and 68-98% RH

Electrical TransportUnspecified subtype

AC impedance spectroscopy; proton conductivity

2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing

pelletised ZZU-2 · Pellet · Pellet; 1 Hz to 1 MHz, 100 mV, quasi-four-probe Pt electrodes; 25-100 deg C and 68-98% RH

Electrical TransportFour contact

Temperature-variable four-probe conductivity

2020 · Quantum spin liquid state in a two-dimensional semiconductive metal−organic framework

Cu3(HHTP)2 pressed pellet with gold-wire four-probe contacts · Pellet · Four gold wires glued to pressed MOF pellet with gold paste; Arrhenius fit to temperature-variable conductivity.

Electrical TransportFour contact

Temperature-variable four-probe conductivity

2020 · Quantum spin liquid state in a two-dimensional semiconductive metal−organic framework

Zn3(HHTP)2 pressed pellet with gold-wire four-probe contacts · Pellet · Four gold wires glued to pressed MOF pellet with gold paste; Arrhenius fit to temperature-variable conductivity.

Electrical TransportTwo contact

Two-contact wire-paste single-crystal conductivity

2020 · Semiconducting Supramolecular Organic Frameworks Assembled from a Near-Infrared Fluorescent Macrocyclic Probe and Fullerenes

single crystals of pristine receptor 2 · Single Crystal · Voltage swept between -0.2 and 0.2 V at ambient conditions, 40-60% relative humidity, dark, along crystallographic z axis.

Electrical TransportTwo contact

Two-contact wire-paste single-crystal conductivity

2020 · Semiconducting Supramolecular Organic Frameworks Assembled from a Near-Infrared Fluorescent Macrocyclic Probe and Fullerenes

single crystals of (2*C60)n SOF · Single Crystal · Voltage swept between -0.2 and 0.2 V at ambient conditions, 40-60% relative humidity, dark, along crystallographic z axis.

Electrical TransportTwo contact

Two-contact wire-paste single-crystal conductivity

2020 · Semiconducting Supramolecular Organic Frameworks Assembled from a Near-Infrared Fluorescent Macrocyclic Probe and Fullerenes

single crystals of (2*C70)n SOF · Single Crystal · Voltage swept between -0.2 and 0.2 V at ambient conditions, 40-60% relative humidity, dark, along crystallographic z axis.

Electrical TransportTwo contact

Two-probe I-V conductivity on a single nanowire

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 · Keithley 4200 SCS parameter analyser; Au contacts; measured at 300 K in air without light. Channel dimensions L = 5 um, W = 0.33 um, H = 198 nm from SI Fig. S9 caption.

Electrical TransportUnspecified subtype

I-V measurement

2020 · Spin crossover in Fe(triazole)-Pt nanoparticle self-assembly structured at the sub-5 nm scale

Pristine PtNP deposit on electrode · Electrode · Pristine PtNP deposit measured at 300 K.

Electrical TransportUnspecified subtype

I-V measurement

2020 · Spin crossover in Fe(triazole)-Pt nanoparticle self-assembly structured at the sub-5 nm scale

PtNPs-FeL3 self-assembly drop-cast on interdigitated electrodes · Electrode · PtNPs-FeL3 self-assembly measured at 300 K; non-linearity used as Coulomb blockade signature.

Electrical TransportFour contact

Hall effect, van der Pauw method

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Iodine-doped Cu3(TABTO)2-Ar pellet · Pellet · Hall measurements on 8 x 8 mm2 and 0.20 mm thick iodine-doped Cu3(TABTO)2-Ar pellet at room temperature.

Electrical TransportUnspecified subtype

Arrhenius analysis of conductivity vs 1/T

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Iodine-doped Cu3(TABTO)2-Ar pellet · Pellet · Activation energy fit from linear region from 30 K to 200 K.

Electrical TransportFour contact

Four-probe electrical conductivity

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Iodine-doped Cu3(TABTO)2-Ar pellet · Pellet · Iodine-doped Cu3(TABTO)2-Ar and Air-1 pellets pressed at 1.2 GPa; Keithley 2636A source meter and 2182 nanovoltmeter.

Electrical TransportUnspecified subtype

Infrared reflectance and Kramers-Kronig optical conductivity

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Iodine-doped Cu3(TABTO)2-Ar pellet · Pellet · Reflectance measured from 20 to 25000 cm-1 at room temperature using Bruker Vertex 80v and ex situ metallisation; optical conductivity from KK analysis.

Electrical TransportFour contact

Four-probe electrical conductivity

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Pristine Cu3(TABTO)2-Ar pellet · Pellet · Bulk compressed pristine Cu3(TABTO)2-Ar and Cu3(TABTO)2-Air-1 pellets measured; SI method uses PPMS and Keithley electrometers in vacuum with Ti/Au contacts.

Electrical TransportFour contactVariable temperature

Temperature-dependent four-probe conductivity

2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework

Iodine-doped Cu3(TABTO)2-Ar pellet · Pellet · Electrical conductivity plotted from 100 to 330 K for iodine-doped Cu3(TABTO)2-Ar pellet.

Electrical TransportTwo contact

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.

Electrical TransportFour contact

four-point probe conductivity

2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction

Ni-HAB-H pellet for four-point probe · Pellet · Cold-isostatically pressed pellet, 3.175 mm diameter and 200-300 um thickness, four tungsten probes 0.75 mm spacing, ca. few 10^-4 mbar for 24 h, dark, Keithley 4200 SCS, 25 C.

Electrical TransportFour contact

four-point probe conductivity

2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction

Ni-HAB-L pellet for four-point probe · Pellet · Cold-isostatically pressed pellet, 3.175 mm diameter and 200-300 um thickness, four tungsten probes 0.75 mm spacing, ca. few 10^-4 mbar for 24 h, dark, Keithley 4200 SCS, 25 C.

Electrical TransportUnspecified subtype

Four-electrode conductivity

2020 · Ultrafast in Situ Synthesis of Large-Area Conductive Metal-Organic Frameworks on Substrates for Flexible Chemiresistive Sensing

Cu-BHT film reaction-time series · Thin Film · Conductivity versus reaction time at room temperature

Electrical TransportUnspecified subtype

I-V and DMC response after ambient storage

2020 · Ultrasensitive Detection of Electrolyte Leakage from Lithium-Ion Batteries by Ionically Conductive Metal-Organic Frameworks

IC-MOF chemicapacitor/chemiresistor sensor with gold electrodes · Electrode · IC-MOF sensor stored in ambient atmosphere for 6 months, then I-V and DMC responses remeasured.

Electrical TransportUnspecified subtype

I-V and DMC sensing after ethanethiol poisoning

2020 · Ultrasensitive Detection of Electrolyte Leakage from Lithium-Ion Batteries by Ionically Conductive Metal-Organic Frameworks

ethanethiol-treated IC-MOF sensor · Electrode · IC-MOF sensor exposed to ethanethiol, then I-V and 200 ppm DMC response measured; vacuum-heated state also compared.

Electrical TransportFour contact

van der Pauw electrical conductivity on pellet.

2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis

bulk HHB-Cu powder · Powder · Bulk HHB-Cu pellet form, about 0.25 mm thick, measured from 246 to 310 K; reported 300 K value in main text.

Electrical TransportFour contact

van der Pauw electrical conductivity and I-V measurement.

2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis

HHB-Cu nanosheets · Nanosheet · Lakeshore Hall System 9700A; silver-conductive-glue contacts; temperature-dependent conductivity from 243 to 310 K; Ohmic contact checked by I-V curves.

Electrical TransportUnspecified subtype

conductivity measurement, method not separately specified

2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution

Co-HAB-HNs · Nanosheet · Conductivity value for Co-HAB-HNs is reported in discussion as a reason for poorer OER kinetics.

Electrical TransportFour contact

Four-point probe

2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution

Co-HAB-NSs · Nanosheet · Pellets of Co-HAB-NSs, 1 cm diameter and 300 micrometre thickness, pressed at 10 MPa for 30 s; measured at room temperature.

Electrical TransportUnspecified subtype

regular four-terminal electrical conductivity

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Cu-BHT four-terminal electrical devices 1-4 · Thin Film · Electrical conductivity measured as a function of temperature for Devices 1-4.

ThermoelectricUnspecified subtype

Seebeck coefficient and four-terminal electrical conductivity on same devices

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Cu-BHT Seebeck/electrical devices 5-7 · Thin Film · Extra leads generate a temperature gradient for Seebeck measurement; S and sigma measured on Devices 5, 6, and 7.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 10 Dev 1 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 10 Dev 4 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 11 Dev 1 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 11 Dev 2 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 11 Dev 3 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Chip 11 Dev 4 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

P11_T2 Device 7 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

P11_T2 Device 8 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

P7_T3_1_C25 Device 2 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

RT sample 2b spot 2 Dev 1 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Sample 1 Dev 2 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportUnspecified subtype

electrical conductivity with tabulated optical/AFM device dimensions

2020 · Unique Thermoelectric Properties Induced by Intrinsic Nanostructuring in a Polycrystalline Thin-Film Two-Dimensional Metal–Organic Framework, Copper Benzenehexathiol

Sample 3 Dev 1 · Thin Film · Room-temperature conductivity for a Cu-BHT device not shown in the main text; length and width from optical image, thickness from AFM before dry etch.

Electrical TransportFour contact

Linear four-contact / four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ as-prepared pressed pellet · Pellet · Cold-isostatic pressed FeTHQ pellet measured under vacuum with 0.3 mm contact spacing and 25 um BeCu contacts.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_ox · Pellet · Air-oxidised FeTHQ pellet conductivity compared with the same batch of as-prepared FeTHQ.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_red0.5 · Pellet · Reduced FeTHQ_red0.5 pellet conductivity from Figure 5a.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_red2 · Pellet · Reduced FeTHQ_red2 pellet conductivity from Figure 5a.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_red4 · Pellet · Reduced FeTHQ_red4 pellet conductivity from Figure 5a.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_redox0.5 · Pellet · FeTHQ_redox0.5 pellet conductivity from Figure S14a after air oxidation followed by sodium naphthalenide reduction.

Electrical TransportFour contact

Four-point probe conductivity

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_redox2 · Pellet · FeTHQ_redox2 pellet conductivity from Figure S14a after air oxidation followed by sodium naphthalenide reduction.

Electrical TransportUnspecified subtype

film conductivity as a function of Cu-bix amount

2019 · A Copper Coordination Polymer with Matching Energy Level for Modifying Hole Transport Layers to Improve the Performance of Perovskite Solar Cells

Cu-bix-doped HTL concentration series · Thin Film · Conductivity of HTL films with different amounts of Cu-bix; data in Figure S2b.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

ANMOF-74(Co) pellet · Pellet · Pressed 1 cm diameter pellet from 100 mg MOF bulk material; ECOPIA Model HMS 3000 Hall measurement setup with SPCB-1 spring clip board; probe spacing adjusted to 5 mm.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

ANMOF-74(Mg) pellet · Pellet · Pressed 1 cm diameter pellet from 100 mg MOF bulk material; ECOPIA Model HMS 3000 Hall measurement setup with SPCB-1 spring clip board; probe spacing adjusted to 5 mm.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

ANMOF-74(Mn) pellet · Pellet · Pressed 1 cm diameter pellet from 100 mg MOF bulk material; ECOPIA Model HMS 3000 Hall measurement setup with SPCB-1 spring clip board; probe spacing adjusted to 5 mm.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

ANMOF-74(Ni) pellet · Pellet · Pressed 1 cm diameter pellet from 100 mg MOF bulk material; ECOPIA Model HMS 3000 Hall measurement setup with SPCB-1 spring clip board; probe spacing adjusted to 5 mm.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

ANMOF-74(Zn) pellet · Pellet · Pressed 1 cm diameter pellet from 100 mg MOF bulk material; ECOPIA Model HMS 3000 Hall measurement setup with SPCB-1 spring clip board; probe spacing adjusted to 5 mm.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

MOF-74(Co) control pellet · Pellet · Activated/vacuum dried regular MOF-74 powder compressed into pellet and measured by four-point probe van der Pauw method.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

MOF-74(Mg) control pellet · Pellet · Activated/vacuum dried regular MOF-74 powder compressed into pellet and measured by four-point probe van der Pauw method.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

MOF-74(Mn) control pellet · Pellet · Activated/vacuum dried regular MOF-74 powder compressed into pellet and measured by four-point probe van der Pauw method.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

MOF-74(Ni) control pellet · Pellet · Activated/vacuum dried regular MOF-74 powder compressed into pellet and measured by four-point probe van der Pauw method.

Electrical TransportFour contact

four-point probe van der Pauw conductivity

2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence

MOF-74(Zn) control pellet · Pellet · Activated/vacuum dried regular MOF-74 powder compressed into pellet and measured by four-point probe van der Pauw method.

Electrical TransportUnspecified subtype

AC impedance spectroscopy / proton conductivity

2019 · A Highly Proton-Conductive 3D Ionic Cadmium-Organic Framework for Ammonia and Amines Impedance Sensing

MOF 1 cylindrical pellet for proton conductivity · Pellet · PARSTAT 2273; AC voltage 100 mV; 0.1-1 MHz; cylindrical pellets with Pt electrodes; equilibrated at RH for 18 h; 25-100 C and 68-98% RH.

Electrical TransportUnspecified subtype

Arrhenius activation energy from proton conductivity

2019 · A Highly Proton-Conductive 3D Ionic Cadmium-Organic Framework for Ammonia and Amines Impedance Sensing

MOF 1 cylindrical pellet for proton conductivity · Pellet · Ea from least-squares fits of Arrhenius slopes at 68 and 98% RH.

Electrical TransportUnspecified subtype

Electrochemical impedance spectroscopy (EIS) ionic conductivity

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 · SS/ILE@MOF/SS cell, -10 to 80 deg C, 10 to 10^5 Hz; Arrhenius plots for varied ILE amounts.

Electrical TransportFour contactVariable temperature

van der Pauw variable-temperature conductivity

2019 · A semiconducting layered metal-organic framework magnet

compressed K3Fe2[PcFe-O8] pellet · Pellet · Four-probe silver-wire contacts on compressed pellet; I-V curves from 10 nA to 100 uA; temperature range 5-400 K by helium cooling.

Electrical TransportFour contact

Four-probe powder electrical conductivity

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

Ni-COF black powder · Powder · Powder conductivity recorded on a Suzhou Jingge ST2253 by four-probe method.

Electrical TransportFour contactVariable temperature

Variable-temperature van der Pauw electrical conductivity

2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance

Ni-COF thin film on quartz · Thin Film · Ni-COF thin film on quartz measured under temperature control using a Keithley 4200-SCS parameter analyser.

Electrical TransportUnspecified subtype

Literature-reported Cu-CAT conductivity cited in introduction

2019 · Bottom-Up Fabrication of 1D Cu-based Conductive Metal–Organic Framework Nanowires as a High-Rate Anode towards Efficient Lithium Storage

Cu-CAT literature conductivity sample · Unknown · Conductivity estimated to vary with specific crystallisation; not measured first-hand in this paper.

Electrical TransportTwo contact

AC impedance spectroscopy on a two-contact pressed pellet

2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption

Pressed-pellet Cu[Ni(pdt)2] transport sample · Pellet · Ar-filled glovebox; activated Cu[Ni(pdt)2] pressed in a two-contact PEEK screw cell; Bio-Logic VMP-3; 1 MHz to 0.01 Hz; 100 mV sinus amplitude; 0 mV dc bias.

Electrical TransportUnspecified subtype

Conductivity after saturated acetonitrile-vapour exposure

2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption

Acetonitrile-vapour exposed Cu[Ni(pdt)2].xCH3CN · Pellet · Cu[Ni(pdt)2] exposed to saturated acetonitrile vapour at room temperature for 12 h.

Sensing ApplicationTwo contact

In situ two-contact conductance during gas adsorption

2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption

Hydrocarbon-dosed Cu[Ni(pdt)2] pellet · Pellet · Pressed pellet in custom conductivity cell attached to Micromeritics 3-Flex; room-temperature steady-state conductivities of Cu[Ni(pdt)2].nCxHy measured under constant current as a function of pressure; baseline at 1 ubar.

Electrical TransportTwo contact

Two-contact pressed-pellet conductivity measurement

2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption

Pressed-pellet Cu[Ni(pdt)2] transport sample · Pellet · Guest-free activated Cu[Ni(pdt)2] pressed pellet measured at room temperature.

Electrical TransportTwo contact

two-point probe I-V on pressed pellet

2019 · Conductive 2D metal-organic framework for high-performance cathodes in aqueous rechargeable zinc batteries

Cu3(HHTP)2 powder pressed pellet · Pellet · Pellet in home-built in situ pellet press connected to Keithley 4200-SCS; voltage sweep at 25 deg C.

Electrical TransportFour contact

four-point probe

2019 · Conductive 2D metal-organic framework for high-performance cathodes in aqueous rechargeable zinc batteries

Cu3(HHTP)2 single crystal literature reference · Single Crystal · Single-crystal conductivity value cited from prior reference 28; not measured first-hand in this paper.

Electrical TransportTwo contact

Two-contact probe pressed-pellet I-V conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 1 · Pellet · Ambient atmosphere at 296 K; at least two pellets from five batches; voltage sweep -0.5 to +0.5 V or -1 to +1 V.

Electrical TransportTwo contact

Two-contact probe pressed-pellet I-V conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 2 · Pellet · Ambient atmosphere at 296 K; at least two pellets from five batches; voltage sweep -0.5 to +0.5 V or -1 to +1 V.

Electrical TransportTwo contact

Two-contact probe pressed-pellet I-V conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 3 · Pellet · Ambient atmosphere at 296 K; at least two pellets from five batches; voltage sweep -0.5 to +0.5 V or -1 to +1 V.

Electrical TransportTwo contactVariable temperature

Variable-temperature two-contact probe pressed-pellet conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 1 · Pellet · Dynamic vacuum around 1e-5 Torr; screw cell; 250-350 K for 1 and 2, 295-350 K for 3; Arrhenius analysis.

Electrical TransportTwo contactVariable temperature

Variable-temperature two-contact probe pressed-pellet conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 2 · Pellet · Dynamic vacuum around 1e-5 Torr; screw cell; 250-350 K for 1 and 2, 295-350 K for 3; Arrhenius analysis.

Electrical TransportTwo contactVariable temperature

Variable-temperature two-contact probe pressed-pellet conductivity

2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks

Pressed pellet device of compound 3 · Pellet · Dynamic vacuum around 1e-5 Torr; screw cell; 250-350 K for 1 and 2, 295-350 K for 3; Arrhenius analysis.

Electrical TransportUnspecified subtype

Conductivity assessment

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

C60-doped [100]-oriented PPF-11/ZnO-FTO film · Electrode · Method not described in supplied text; reported qualitatively for C60-doped PPF-11/ZnO films

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

C60-doped [100]-oriented PPF-11/ZnO-FTO film · Electrode · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

drop-cast PPF-11 on TCPP/ZnO-FTO · Electrode · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

drop-cast PPF-11 on ZnO-FTO · Electrode · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

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 · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

TCPP/ZnO-FTO film · Electrode · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrochemistry ApplicationUnspecified subtype

Current-voltage (J-V) photovoltaic measurement

2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces

blank ZnO-FTO film · Electrode · Liquid-junction DSSC under simulated 1-sun AM 1.5 illumination, 100 mW/cm2; Pt-FTO counter electrode; I-/I3- electrolyte in propylene carbonate; 0.2 cm2 active area

Electrical TransportTwo contact

Two-probe direct current I-V conductivity measurement

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 1 ITO/film/Ag two-probe conductivity sample · Thin Film · Spin-coated ITO/compound/silver two-probe sample; Keithley 2635B source meter; room temperature, open atmosphere.

Electrical TransportUnspecified subtype

Impedance spectroscopy; Nyquist and frequency-dependent ac conductivity

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 1 ITO/compound/Al Schottky thin-film device · Thin Film · Agilent 4295A LCR impedance spectroscopy; main text states frequency range 40 Hz to 10 MHz at room temperature under dark conditions.

Electrical TransportUnspecified subtype

Current-voltage measurement and Schottky barrier diode analysis

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 1 ITO/compound/Al Schottky thin-film device · Thin Film · ITO/compound/Al Schottky device; Keithley 2635B source meter, -2 V to +2 V under dark room-temperature ambient conditions; thermionic-emission and SCLC analyses.

Electrical TransportTwo contact

Two-probe direct current I-V conductivity measurement

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 2 ITO/film/Ag two-probe conductivity sample · Thin Film · Spin-coated ITO/compound/silver two-probe sample; Keithley 2635B source meter; room temperature, open atmosphere.

Electrical TransportUnspecified subtype

Impedance spectroscopy; Nyquist and frequency-dependent ac conductivity

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 2 ITO/compound/Al Schottky thin-film device · Thin Film · Agilent 4295A LCR impedance spectroscopy; main text states frequency range 40 Hz to 10 MHz at room temperature under dark conditions.

Electrical TransportUnspecified subtype

Current-voltage measurement and Schottky barrier diode analysis

2019 · Enhancement of Electrical Conductivity due to Structural Distortion from Linear to Nonlinear Dicarboxylato-Bridged Zn(II) 1D-Coordination Polymers

Compound 2 ITO/compound/Al Schottky thin-film device · Thin Film · ITO/compound/Al Schottky device; Keithley 2635B source meter, -2 V to +2 V under dark room-temperature ambient conditions; thermionic-emission and SCLC analyses.

Electrical TransportUnspecified subtype

Arrhenius analysis of proton conductivity

2019 · Functionality in metal-organic framework minerals: Proton conductivity, stability and potential for polymorphism

ST1 compacted pellet · Pellet · Arrhenius plots for ST1 at 90% RH, ST2 at 70% RH and ZH at 90% RH.

Electrical TransportTwo contact

AC impedance spectroscopy, conventional two-probe method

2019 · Functionality in metal-organic framework minerals: Proton conductivity, stability and potential for polymorphism

ST1 compacted pellet · Pellet · Relative humidity sweep at 25 deg C; frequency 1 Hz to 10 MHz; temperature/humidity controlled chamber.

Electrical TransportTwo contact

AC impedance spectroscopy, conventional two-probe method

2019 · Functionality in metal-organic framework minerals: Proton conductivity, stability and potential for polymorphism

ZH compacted pellet · Pellet · Relative humidity sweep at 25 deg C; frequency 1 Hz to 10 MHz; temperature/humidity controlled chamber.

Electrical TransportUnspecified subtype

AC impedance / Bode conductivity

2019 · Guest-Assisted Proton Conduction in the Sulfonic Mesoporous MIL-101 MOF

Anhydrous MIL-101(Cr)-NH-(CH2)3SO3H powder · Powder · Anhydrous sample after in situ heating at 383 K overnight; frequency 1 Hz to 1 MHz; 20 mV ac voltage.

Electrical TransportFour contact

Four-probe direct-current I-V measurement

2019 · Highly Electroconductive Metal-Organic Framework: Tunable by Metal Ion Sorption Quantity

TMU-60-Cd compressed pellet · Pellet · Cd2+-adsorbed dry pressed pellet, room temperature; 1 cm diameter, 0.2 mm thickness.

Electrical TransportFour contact

Four-probe direct-current I-V measurement

2019 · Highly Electroconductive Metal-Organic Framework: Tunable by Metal Ion Sorption Quantity

pristine TMU-60 compressed pellet · Pellet · Dry pressed pellet, room temperature; 1 cm diameter, 0.2 mm thickness; straight-line probe geometry.

Electrical TransportUnspecified subtype

impedance spectroscopy and frequency-dependent AC conductivity

2019 · Influence of Axial Linkers on Polymerization in Paddle-Wheel Cu(II) Coordination Polymers for the Application of Optoelectronics Devices

compound 1 Al/compound/ITO Schottky thin-film device · Thin Film · 40 Hz-10 MHz at room temperature; dark condition; dc conductivity extrapolated from low-frequency AC conductivity plot.

Electrical TransportUnspecified subtype

impedance spectroscopy and frequency-dependent AC conductivity

2019 · Influence of Axial Linkers on Polymerization in Paddle-Wheel Cu(II) Coordination Polymers for the Application of Optoelectronics Devices

compound 2 Al/compound/ITO Schottky thin-film device · Thin Film · 40 Hz-10 MHz at room temperature; dark condition; dc conductivity extrapolated from low-frequency AC conductivity plot.

Electrical TransportUnspecified subtype

current-voltage measurement and thermionic-emission/Cheung analysis

2019 · Influence of Axial Linkers on Polymerization in Paddle-Wheel Cu(II) Coordination Polymers for the Application of Optoelectronics Devices

compound 1 Al/compound/ITO Schottky thin-film device · Thin Film · Bias -1 to +1 V; dark and AM 1.5 light irradiation; white-light irradiance about 1000 W m-2; room temperature.

Electrical TransportUnspecified subtype

current-voltage measurement and thermionic-emission/Cheung analysis

2019 · Influence of Axial Linkers on Polymerization in Paddle-Wheel Cu(II) Coordination Polymers for the Application of Optoelectronics Devices

compound 2 Al/compound/ITO Schottky thin-film device · Thin Film · Bias -1 to +1 V; dark and AM 1.5 light irradiation; white-light irradiance about 1000 W m-2; room temperature.

Electrical TransportUnspecified subtype

Time-dependent conductivity after annealing

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Annealed compound 1 sample 1 · Single Crystal · Sample 1 annealed at 50 C for 24 h; conductivity followed during heating/cooling and over 18 h.

Electrical TransportFour contact

Four-probe current-voltage measurement

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Compound 1 single-crystal device, sample 3 · Single Crystal · FIB-deposited Pt contacts on single-crystal device; I-V curve at 300 K.

Electrical TransportFour contact

Four-probe current-voltage measurement

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Compound 1 single-crystal device, sample 1 · Single Crystal · FIB-deposited Pt contacts on single-crystal device; I-V curve at 300 K.

Electrical TransportFour contact

Four-probe current-voltage measurement

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Compound 1 single-crystal device, sample 2 · Single Crystal · FIB-deposited Pt contacts on single-crystal device; I-V curve at 300 K.

Electrical TransportFour contactVariable temperature

Temperature-dependent four-probe conductivity

2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity

Compound 1 single-crystal device, sample 1 · Single Crystal · LakeShore Cryotronics TTP4 cryogenic probe station; Keithley 4200-SCS; 110-300 K; 0.1 V reported in Fig. 3c.

Electrical TransportUnspecified subtype

I-V conductivity test

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

HTM control film without In10 · Thin Film · Linear current-density versus voltage plot for HTM based film; device geometry not reported.

Electrical TransportUnspecified subtype

I-V conductivity test

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

HTM/In10-2 film · Thin Film · Linear current-density versus voltage plot for HTM/In10-2 based film; device geometry not reported.

Electrical TransportUnspecified subtype

I-V conductivity test

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

HTM/In10-4 film · Thin Film · Linear current-density versus voltage plot for HTM/In10-4 based film; device geometry not reported.

Electrical TransportUnspecified subtype

I-V conductivity test

2019 · Metal organic framework doped Spiro-OMeTAD with increased conductivity for improving perovskite solar cell performance

HTM/In10-6 film · Thin Film · Linear current-density versus voltage plot for HTM/In10-6 based film; device geometry not reported.

Electrical TransportTwo contact

Direct-current two-contact conductivity on single crystals

2019 · Multifunctional coordination polymers based on copper with modified nucleobases, easily modulated in size and conductivity

CP1 turquoise needle-shaped single crystals · Single Crystal · Graphite paste contacts and 25 um wolframium wires; voltage swept from +10 to -10 V.

Electrical TransportTwo contact

Two-contact conductivity after iodine vapour exposure

2019 · Multifunctional coordination polymers based on copper with modified nucleobases, easily modulated in size and conductivity

CP1 exposed to iodine vapour · Single Crystal · CP1 exposed to iodine vapour at ambient temperature and pressure for different times; same electrical method and voltage range as pristine crystals.

Electrical TransportVariable temperature

Temperature-dependent conductivity and Arrhenius analysis

2019 · Multifunctional coordination polymers based on copper with modified nucleobases, easily modulated in size and conductivity

CP1 turquoise needle-shaped single crystals · Single Crystal · Conductivity versus temperature from 300 K to 380 K; activation energy from ln(conductivity) versus 1/T.

Electrical TransportTwo contact

Direct-current two-contact conductivity on single crystals

2019 · Multifunctional coordination polymers based on copper with modified nucleobases, easily modulated in size and conductivity

CP2 light-blue single crystals · Single Crystal · Graphite paste contacts and 25 um wolframium wires; voltage swept from +10 to -10 V.

Electrical TransportTwo contact

Direct-current two-contact conductivity on single crystals

2019 · Multifunctional coordination polymers based on copper with modified nucleobases, easily modulated in size and conductivity

CP3 yellow single crystals · Single Crystal · Graphite paste contacts and 25 um wolframium wires; voltage swept from +10 to -10 V.

Electrochemistry ApplicationUnspecified subtype

current-voltage photovoltaic measurement

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

ITO/Ni-CAT-1/Al photovoltaic device · Electrode · J-V under AM 1.5G illumination calibrated to 100 mW cm^-2 using Solar Light Model 16S simulator and Keithley 2400 SourceMeter.

Electrical TransportTwo contact

two-probe I-V

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Co-CAT-1 thin film on quartz · Thin Film · Two-probe I-V on films grown on 1.0 cm x 1.2 cm quartz; electrodes around 5 mm apart.

Electrical TransportTwo contact

two-probe I-V

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Ni-CAT-1 thin film on quartz · Thin Film · Two-probe I-V on films grown on 1.0 cm x 1.2 cm quartz; electrodes around 5 mm apart.

Electrical TransportFour contact

van der Pauw conductivity

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Oriented Co-CAT-1 thin film on glass · Thin Film · ECOPIA Model HMS 3000; films grown on glass substrates; current 25 nA; d = 0.2 um.

Electrical TransportFour contact

van der Pauw conductivity

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Co-CAT-1 pressed pellet · Pellet · ECOPIA Model HMS 3000 Hall setup; SPCB-1 spring clip board; probe distance adjusted to 5 mm.

Electrical TransportFour contact

van der Pauw conductivity

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Cu-CAT-1 pressed pellet · Pellet · ECOPIA Model HMS 3000 Hall setup; SPCB-1 spring clip board; probe distance adjusted to 5 mm.

Electrical TransportFour contact

van der Pauw conductivity

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Oriented Ni-CAT-1 thin film on glass · Thin Film · ECOPIA Model HMS 3000; films grown on glass substrates; current 25 nA; d = 0.2 um.

Electrical TransportFour contact

van der Pauw conductivity

2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks

Ni-CAT-1 pressed pellet · Pellet · ECOPIA Model HMS 3000 Hall setup; SPCB-1 spring clip board; probe distance adjusted to 5 mm.

Electrical TransportTwo contact

Direct-current two-probe conductivity

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1 pressed pellet · Pellet · Pressed pellet; diameter 3 mm and thickness 200-400 um; variable-temperature data shown in Figure 4.

Electrical TransportTwo contact

Direct-current two-probe conductivity

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1 single crystal · Single Crystal · Variable-temperature conductivity in PPMS MODEL 6000 liquid He cryostat; Keithley 2611 sourcemeter; cooling/heating rate 2 K/min; measured along pi-stacked columnar c axis.

Electrical TransportTwo contact

Direct-current two-probe conductivity

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1h pressed pellet · Pellet · Pressed pellet of PMC-1h; variable-temperature data shown in Figure 4.

Electrical TransportUnspecified subtype

Room-temperature conductivity of pressed pellet

2019 · Porous Molecular Conductor: Electrochemical Fabrication of Through-Space Conduction Pathways among Linear Coordination Polymers

PMC-1s pressed pellet · Pellet · Pressed pellet conductivity reported in SI narrative.

Electrical TransportTwo contact

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 TransportTwo contact

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 TransportTwo contact

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 TransportTwo contact

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.

Electrical TransportUnspecified subtype

Room-temperature current-voltage measurements.

2019 · Single Crystals of Electrically Conductive Two-Dimensional Metal-Organic Frameworks: Structural and Electrical Transport Properties

Exfoliated Cu3(HHTP)2 flakes · Nanosheet · Exfoliated Cu3(HHTP)2 flake devices measured at 295 K; SI table lists two flake devices.

Electrical TransportUnspecified subtype

Pellet conductivity measurement.

2019 · Single Crystals of Electrically Conductive Two-Dimensional Metal-Organic Frameworks: Structural and Electrical Transport Properties

Cu3(HHTP)2 pellets from rod and particle batches · Pellet · Pellet conductivities reported for the Cu3(HHTP)2 particle batch used to exfoliate flakes and for the rod batch.

Electrical TransportUnspecified subtype

Room-temperature current-voltage measurements.

2019 · Single Crystals of Electrically Conductive Two-Dimensional Metal-Organic Frameworks: Structural and Electrical Transport Properties

Cu3(HHTP)2 rods · Single Crystal · Cu3(HHTP)2 rod devices measured at 295 K; SI table lists three rod devices.

Electrical TransportFour contactTwo contactVariable temperature

Two-probe and four-probe DC current-voltage sweeps plus AC variable-temperature conductance.

2019 · Single Crystals of Electrically Conductive Two-Dimensional Metal-Organic Frameworks: Structural and Electrical Transport Properties

Single-rod Ni3(HITP)2 electrical devices · Single Crystal · Representative single Ni3(HITP)2 rod device measured at 295 K and 1.4 K; VT conductance extended from 295 K down to 0.3 K; additional Ni rod devices shown in SI Figure 2.

Electrical TransportUnspecified subtype

I-V measurement with Ohmic electrode; Keithley sourcemeter

2019 · Three-Dimensional-Coordination Polymer of Zn(II)-Carboxylate: Structural Elucidation, Photoelectrical Conductivity, and Biological Activity

compound 1 thin-film Schottky diode · Thin Film · Conductivity measured from the slope of resultant I-V graph; normal temperature and ambient conditions.

Electrical TransportUnspecified subtype

Schottky diode current-voltage and thermionic-emission/Cheung analysis

2019 · Three-Dimensional-Coordination Polymer of Zn(II)-Carboxylate: Structural Elucidation, Photoelectrical Conductivity, and Biological Activity

compound 1 thin-film Schottky diode · Thin Film · ITO/compound 1/Al device; voltage range -1 to +1 V; dark and light conditions; normal temperature and ambient conditions.

Electrical TransportUnspecified subtype

I-V measurement with Ohmic electrode; Keithley sourcemeter

2019 · Three-Dimensional-Coordination Polymer of Zn(II)-Carboxylate: Structural Elucidation, Photoelectrical Conductivity, and Biological Activity

ppmh ligand thin-film Schottky diode · Thin Film · Conductivity measured from the slope of resultant I-V graph; normal temperature and ambient conditions.

Electrical TransportUnspecified subtype

I-V curves

2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior

compressed PTC-Fe pellet · Pellet · Pellet I-V curves measured from -1.0 to +1.0 V.

Electrical TransportVariable temperature

variable-temperature conductivity

2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior

compressed PTC-Fe pellet · Pellet · Conductivity measured from 20 to 320 K; plotted as sigma(T), ln(sigma) versus 1/T, and ln(sigma) versus T^-1/4.

Electrical TransportFour contact

four-probe van der Pauw conductivity

2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior

compressed PTC-Fe pellet · Pellet · Bulk compressed pellet; approximately 0.3 mm thick; pressed at approximately 1 GPa; Cu wires/carbon paint contacts; vacuum.

Electrical TransportTwo contact

vertical two-probe conductivity

2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior

compressed PTC-Fe pellet · Pellet · Compressed pellet vertical conductivity measured at room temperature in response to reviewer query.

Electrical TransportUnspecified subtype

Single-crystal DC current-voltage measurement

2018 · A new semiconducting coordination polymer consisting of copper(I)-iodide and 3-pyridinecarboxaldehyde

Yellow needle-shaped single crystals of 1 · Single Crystal · 6517A electrometer; gold electrodes pasted on both sides of one single crystal; low-voltage ohmic region fitted.

Electrical TransportUnspecified subtype

Time-dependent proton conductivity monitoring

2018 · A Water-Stable Proton-Conductive Barium(II)-Organic Framework for Ammonia Sensing at High Humidity

Pressed pellet of MOF 1 · Pellet · Continuous conductivity testing for 8 h at 100 deg C and 98% RH.

Electrical TransportFour contact

Four-probe electrical conductivity (RTS-9)

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC (MOF) · Powder · Four-probe electric measurements of powder-derived samples; table does not state pellet geometry.

Electrical TransportFour contact

Four-probe electrical conductivity (RTS-9)

2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries

CuNC NPs · Powder · Four-probe electric measurements of powder-derived samples; table does not state pellet geometry.

Electrical TransportFour contactVariable temperature

Four-point variable-temperature DC conductivity

2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework

Fe2(BDP)3 single-microcrystal FET device · Single Crystal · Single Fe2(BDP)3 crystal; 80-300 K Arrhenius analysis.

Electrical TransportUnspecified subtype

Pressed-pellet conductivity and impedance measurements

2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework

Pressed pellets of KxFe2(BDP)3 · Pellet · Four-point pressed pellet conductivity for K0.2Fe2(BDP)3 and impedance/Nyquist plots for K0.2 and K0.4 pellets.

Electrical TransportTwo contact

Two-point DC conductivity on single-crystal FET devices

2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework

Stepwise-reduced KxFe2(BDP)3 single-microcrystal FET devices · Single Crystal · Device 1 measured as a function of K insertion; source-drain IV curves before and after reduction.

Electrical TransportUnspecified subtype

Pressed-pellet I-V conductivity

2018 · High electrical conductivity and high porosity in a Guest@MOF material: Evidence of TCNQ ordering within Cu3BTC2 micropores

liquid-infiltrated TCNQ@Cu3BTC2, x approximately 0.4 · Powder · Liquid-infiltrated TCNQ@Cu3BTC2 pressed pellet; low-potential measurement used for conductivity because +-1 V sweep is non-ohmic.

Electrical TransportTwo contact

Pressed-pellet two-point-probe I-V conductivity

2018 · High electrical conductivity and high porosity in a Guest@MOF material: Evidence of TCNQ ordering within Cu3BTC2 micropores

10% CuTCNQ/Cu3BTC2 physical mixture · Pellet · Physical mixtures of 1% and 10% CuTCNQ in pristine Cu3BTC2 compared with pristine CuTCNQ.

Electrical TransportTwo contact

Pressed-pellet two-point-probe I-V conductivity

2018 · High electrical conductivity and high porosity in a Guest@MOF material: Evidence of TCNQ ordering within Cu3BTC2 micropores

VPI xTCNQ@Cu3BTC2 concentration series · Powder · Powders (~70 mg) pressed in air-tight press cell at 3 t (375 MPa) for 2 min; I-V curves swept from -5 V to 5 V at 100 mV s^-1; conductivity calculated as sigma = (I/V)(d/A).

Electrical TransportUnspecified subtype

Conductivity-ratio comparison from reported EIS-derived conductivities

2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74

pH 11 NH4OH-treated Co-MOF-74 single crystal, c-axis EIS geometry · Single Crystal · c/a and c/pellet conductivity ratios calculated/reported for pH-controlled Co-MOF-74 at 30, 45, 60, 75, and 90 deg C under 95% RH.

Electrical TransportUnspecified subtype

Conductivity-ratio comparison from reported EIS-derived conductivities

2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74

pH 3 H2SO4-treated Co-MOF-74 single crystal, c-axis EIS geometry · Single Crystal · c/a and c/pellet conductivity ratios calculated/reported for pH-controlled Co-MOF-74 at 30, 45, 60, 75, and 90 deg C under 95% RH.

Electrical TransportUnspecified subtype

Conductivity-ratio comparison from reported EIS-derived conductivities

2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74

pH 5 H2SO4-treated Co-MOF-74 single crystal, c-axis EIS geometry · Single Crystal · c/a and c/pellet conductivity ratios calculated/reported for pH-controlled Co-MOF-74 at 30, 45, 60, 75, and 90 deg C under 95% RH.

Electrical TransportUnspecified subtype

Conductivity-ratio comparison from reported EIS-derived conductivities

2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74

pH 7 H2O-coordinating Co-MOF-74 single crystal, c-axis EIS geometry · Single Crystal · c/a and c/pellet conductivity ratios calculated/reported for pH-controlled Co-MOF-74 at 30, 45, 60, 75, and 90 deg C under 95% RH.

Electrical TransportUnspecified subtype

Conductivity-ratio comparison from reported EIS-derived conductivities

2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74

pH 9 NH4OH-treated Co-MOF-74 single crystal, c-axis EIS geometry · Single Crystal · c/a and c/pellet conductivity ratios calculated/reported for pH-controlled Co-MOF-74 at 30, 45, 60, 75, and 90 deg C under 95% RH.

Electrical TransportFour contact

Four-probe DC conductivity on Hall-bar device

2018 · High-mobility band-like charge transport in a semiconducting two-dimensional metal–organic framework

Laser-ablated Hall-bar Fe3(THT)2(NH4)3 device · Thin Film · Conductance measured between parallel contact pairs without magnetic field; measurements in dark under high vacuum.

Electrical TransportTwo contact

Two-probe DC I-V conductivity

2018 · High-mobility band-like charge transport in a semiconducting two-dimensional metal–organic framework

70 nm two-probe Fe3(THT)2(NH4)3 film device · Thin Film · Au top contacts on SiO2/Si; room-temperature thickness series 20 nm to 1.7 um under vacuum; low-temperature measurements from 4.2 K while warming.

Electrical TransportUnspecified subtype

four-electrode conductivity in PPMS-9

2018 · Highly Conducting Neutral Coordination Polymer with Infinite Two-Dimensional Silver-Sulfur Networks

free-standing Ag-BHT film · Thin Film · Film transferred onto insulated glass or quartz; four parallel gold electrodes deposited by low-temperature vacuum evaporation; current 100 uA; 12-400 K.

Electrical TransportUnspecified subtype

four-electrode conductivity in PPMS-9

2018 · Highly Conducting Neutral Coordination Polymer with Infinite Two-Dimensional Silver-Sulfur Networks

pristine Ag-BHT pellet · Pellet · Pristine pellet prepared under 30 MPa and measured to compare physical form with film/reduced pellet.

Electrical TransportUnspecified subtype

pellet conductivity measurement

2018 · Highly Conducting Neutral Coordination Polymer with Infinite Two-Dimensional Silver-Sulfur Networks

reduced Ag-BHT pellet · Pellet · Reduced Ag-BHT conductivity measured on a pellet sample; variable-temperature conductivity shown from 12 to 400 K.

Electrical TransportFour contact

four-point probe sheet resistance using Keithley 2400 and Labview

2018 · Highly Conductive 2D Metal-Organic Framework Thin Film Fabricated by Liquid-Liquid Interfacial Reaction Using One-Pot-Synthesized Benzenehexathiol

Ag3BHT2 powder-pressed thick film · Pellet · Pressed 7 mm disk; current from 10 to 20 mA; conductivity calculated using SEM thickness.

Electrical TransportFour contact

four-point probe sheet resistance using Keithley 2400 and Labview

2018 · Highly Conductive 2D Metal-Organic Framework Thin Film Fabricated by Liquid-Liquid Interfacial Reaction Using One-Pot-Synthesized Benzenehexathiol

Au3BHT2 powder-pressed thick film · Pellet · Pressed 7 mm disk; current from 10 to 20 mA; conductivity calculated using SEM thickness.

Electrical TransportUnspecified subtype

electrochemical impedance spectroscopy conductivity estimate

2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests

spin-coated NiCB@NU-1000 thin film · Thin Film · EIS in 0.1 M TBAPF6 in DCM at 0 V vs Ag/AgCl/KCl (3 M), 10 mV amplitude, spectra from 800 kHz to 0.5 Hz; conductivity calculated from sigma = l/(R A).

Electrical TransportUnspecified subtype

two-electrode current-voltage measurement on Pt IDE

2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests

NiCB@NU-1000/IDE · Electrode · I-V curves measured in air at room temperature on bare IDE, NU-1000/IDE, NiCB/IDE, and NiCB@NU-1000/IDE.

Electrical TransportUnspecified subtype

two-electrode pellet I-V conductivity

2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests

NiCB@NU-1000 pellet · Pellet · Pellets sandwiched between two conductive FTO substrates; resistance obtained from I-V slope and conductivity calculated with pellet thickness and cross-section area.

Electrical TransportUnspecified subtype

Pressed-pellet conductivity using a home-built press

2018 · Modular O2 electroreduction activity in triphenylene-based metal-organic frameworks

Ni3(HHTP)2 MOF powder · Powder · MOF powder pressed between two stainless steel rods inside a glass capillary; pellet resistance measured with a multimeter.

Electrical TransportUnspecified subtype

Variable-current I-V measurement

2018 · Nanopore-induced host-guest charge transfer phenomena in a metal-organic framework

Pressed pellet of compound 1 · Pellet · 97% relative humidity exposure; current range -2 to 2 microA.

Electrical TransportUnspecified subtype

Variable-current I-V measurement

2018 · Nanopore-induced host-guest charge transfer phenomena in a metal-organic framework

Pressed pellet of compound 2 · Pellet · 97% relative humidity exposure; current range -2 to 2 microA.

Electrical TransportTwo contact

Two-contact probe pressed-pellet conductivity and representative I-V curve

2018 · Novel Topology in Semiconducting Tetrathiafulvalene Lanthanide Metal-Organic Frameworks

Lu6(TTFTB)5 pressed pellet devices · Pellet · Two-contact probe measurements at 296 K in ambient atmosphere on pressed pellets; voltage swept between -1 and +1 V using Keithley 2450 sourcemeter; pellet thickness measured after measurement.

Electrical TransportTwo contact

Two-contact probe pressed-pellet conductivity and representative I-V curve

2018 · Novel Topology in Semiconducting Tetrathiafulvalene Lanthanide Metal-Organic Frameworks

Yb6(TTFTB)5 pressed pellet devices · Pellet · Two-contact probe measurements at 296 K in ambient atmosphere on pressed pellets; voltage swept between -1 and +1 V using Keithley 2450 sourcemeter; pellet thickness measured after measurement.

ThermoelectricUnspecified subtype

Batch-to-batch reproducibility of conductivity and Seebeck

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 · More than 30 P3 batches; SI Fig. SA5 shows scatter.

Electrical TransportUnspecified subtype

Electrical conductivity versus pellet density

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 · 300 K compressed pellets pressed under different pressure.

Electrical TransportUnspecified subtype

Electrical conductivity versus pellet density

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 · 300 K compressed pellets pressed under different pressure.

Electrical TransportUnspecified subtype

Ambient stability of conductivity

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 · Conductivity monitored under ambient atmosphere over about one month.

Electrical TransportUnspecified subtype

Ambient stability of conductivity

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 · Conductivity monitored under ambient atmosphere over about one month.

ThermoelectricFour contact

Four-point conductivity, Seebeck and power factor on compressed pellets

2018 · Polyethenetetrathiolate or polytetrathiooxalate? Improved synthesis, a comparative analysis of a prominent thermoelectric polymer and implications to the charge transport mechanism

P1methanol poly[Kx(Ni-ett)] · Pellet · Main Table 3 comparison of obtained polymers; ambient pellet measurements unless temperature dependence under vacuum is specified.

ThermoelectricVariable temperature

Temperature-dependent conductivity and Seebeck after annealing

2018 · Polyethenetetrathiolate or polytetrathiooxalate? Improved synthesis, a comparative analysis of a prominent thermoelectric polymer and implications to the charge transport mechanism

P3 annealed poly[Ni-tto] · Pellet · P3 pellet annealed 1 h at 110 C before 300-380 K measurements.

Electrical TransportTwo contact

two-point probe conductivity from I-V curve

2018 · Probing charge transfer characteristics in a donor-acceptor metal-organic framework by Raman spectroelectrochemistry and pressure-dependence studies

pressed pellet [(Zn(DMF))2(TTFTC)(DPNI)] · Pellet · Pressed pellet between FTO plates with conductive silver epoxy; AMETEK Solartron Analytical Modulab Potentiostat; potential range +3 to -3 V; sweep rate 10 mV s^-1; room temperature.

Electrical TransportUnspecified subtype

Conductivity measurement cited from prior literature

2018 · Selective reduction of CO2 by conductive MOF nanosheets as an efficient co-catalyst under visible light illumination

Literature Ni3(HITP)2 polycrystalline film · Thin Film · Polycrystalline Ni3(HITP)2 film; details not provided in this paper.

Electrical TransportUnspecified subtype

Conductivity measurement cited from prior literature

2018 · Selective reduction of CO2 by conductive MOF nanosheets as an efficient co-catalyst under visible light illumination

Literature Ni3(HITP)2 pressed pellet · Pellet · Pressed Ni3(HITP)2 pellet; details not provided in this paper.

Electrical TransportFour contact

Four-point-probe bulk electrical conductivity on pressed pellets

2018 · Stabilization of Hexaaminobenzene in a 2D Conductive Metal-Organic Framework for High Power Sodium Storage

Pressed Co-HAB-D pellet · Pellet · Cold-isostatically pressed pellets, 3.175 mm diameter and 200-300 um thickness; four tungsten probes spaced 0.75 mm; evacuated to ca. few 10^-4 mbar for 24 h; data collected in dark at 25 C using Keithley 4200 SCS.

Electrical TransportUnspecified subtype

two-terminal current-voltage sweep with microprobes

2018 · Surface Morphology and Electrical Properties of Cu3BTC2 Thin Films before and after Reaction with TCNQ

Cu(TCNQ) film from 50-cycle Cu3BTC2 device · Electrode · Voltage swept between -1 and 1 V under ambient conditions; current measured with DL 1211 current preamplifier.

Electrical TransportTwo contact

two-probe I-V measurement

2018 · Synthesis and Electric Properties of a Two-Dimensional Metal-Organic Framework Based on Phthalocyanine

pelletised Cu-CuPc · Pellet · I-V in air at room temperature; voltage scanned 0 to 300 mV

Electrical TransportFour contact

Van der Pauw electrical conductivity from I-V curves

2018 · Synthetic Routes for a 2D Semiconductive Copper Hexahydroxybenzene Metal-Organic Framework

Cu-HHB pressed pellet conductivity sample · Pellet · Pressed pellet measured with Keithley 4200 SCS in nitrogen-filled glovebox; current swept -14 nA to +14 nA; temperature ramped 25 C to 105 C at 3 C/min with 5 min soaks every 10 C; activation energy fit over 300-380 K.

Electrical TransportFour contact

Van der Pauw electrical conductivity from I-V curves

2018 · Synthetic Routes for a 2D Semiconductive Copper Hexahydroxybenzene Metal-Organic Framework

Cu-THQ pressed pellet conductivity sample · Pellet · Conductivity-temperature plot for Cu-THQ; assumed same pellet/device protocol described in Section 5 unless otherwise stated.

Electrical TransportTwo contact

two-probe dc current-voltage conductivity

2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry

compound 1 pressed pellet · Pellet · Ambient-temperature pressed pellet conductivity in dinitrogen-filled glovebox using home-built press and Keithley 6517B electrometer

Electrical TransportTwo contact

two-probe dc current-voltage conductivity

2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry

compound 1a pressed pellet · Pellet · Ambient-temperature pressed pellet conductivity in dinitrogen-filled glovebox

Electrical TransportTwo contact

two-probe dc current-voltage conductivity

2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry

compound 2 pressed pellet · Pellet · Ambient-temperature pressed pellet conductivity; CHI 760c or Keithley methods described

Electrical TransportTwo contact

two-probe dc current-voltage conductivity

2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry

compound 3 pressed pellet · Pellet · Ambient-temperature pressed pellet I-V measurement for Zn analogue

Electrical TransportFour contact

van der Pauw electrical conductivity

2017 · A Microporous and Naturally Nanostructured Thermoelectric Metal-Organic Framework with Ultralow Thermal Conductivity

pressed pellet of Ni3(HITP)2 · Pellet · Measured at 25, 30, 35, 40, and 45 C in a 4-arm probe station; pellet on 300 nm SiO2/Si wafer with four gold wires and carbon paste contacts; desolvated at 150 C for 2 h, then measured in the dark under dynamic vacuum.

Electrical TransportVariable temperature

Arrhenius analysis of temperature-dependent conductivity

2017 · A stable porphyrinic metal-organic framework pore-functionalized by high-density carboxylic groups for proton conduction

BUT-83 pressed powder plate for proton conduction · Pellet · Least-square fit of Arrhenius plot slope for BUT-83 proton conduction.

Electrical TransportUnspecified subtype

Literature proton conductivity measurement

2017 · A stable porphyrinic metal-organic framework pore-functionalized by high-density carboxylic groups for proton conduction

Co(DpyDtolP) single crystal literature sample · Single Crystal · Previously reported Co(DpyDtolP) single crystal containing only water molecules at room temperature.

Electrical TransportTwo contact

Two-probe current-voltage conductivity

2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode

H2OPE-C12 ligand control conductivity film · Thin Film · H2OPE-C12 control film measured under dark and light by same conductivity protocol

Electrical TransportUnspecified subtype

Schottky diode I-V

2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode

ITO/H2OPE-C12/Al ligand control diode · Electrode · ITO/H2OPE-C12/Al control device measured under dark and light

Electrical TransportTwo contact

Two-probe current-voltage conductivity

2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode

NMOF-1 spin-coated planar conductivity film · Electrode · Keithley 2400 source meter; room temperature/open atmosphere; dark and light conditions

Electrical TransportUnspecified subtype

Schottky diode I-V and transient photocurrent

2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode

ITO/NMOF-1/Al Schottky barrier diode · Electrode · ITO/NMOF-1/Al SBD measured from -1 to +1 V under dark and AM 1.5 irradiation; transient photocurrent at 1 V bias

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

Pressed Cu-CAT powder pellet · Pellet · Pressed MOF powder pellets measured with Keithley 4200 in air at 297 K in the dark; pellets pressed at about 1 GPa.

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

MIL-100 pressed powder pellet · Pellet · Pressed low-conductivity MOF powder pellet measured by two-probe method in air at 297 K in the dark.

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

MIL-101 pressed powder pellet · Pellet · Pressed low-conductivity MOF powder pellet measured by two-probe method in air at 297 K in the dark.

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

UiO-66 pressed powder pellet · Pellet · Pressed low-conductivity MOF powder pellet measured by two-probe method in air at 297 K in the dark.

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

ZIF-67 pressed powder pellet · Pellet · Pressed low-conductivity MOF powder pellet measured by two-probe method in air at 297 K in the dark.

Electrical TransportTwo contact

Two-probe conductivity

2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors

ZIF-8 pressed powder pellet · Pellet · Pressed low-conductivity MOF powder pellet measured by two-probe method in air at 297 K in the dark.

Electrical TransportUnspecified subtype

Time-dependent proton conductivity stability test

2017 · Controllable proton-conducting pathways: Via situating polyoxometalates in targeting pores of a metal-organic framework

TETA@3 · Powder · TETA@3 held at 80 C and 100% RH; SI Fig. S20 plots log(sigma/S cm^-1) versus time for about 14 days.

Electrical TransportTwo contact

Two-probe/multimeter conductivity on pressed slice

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP polyhedron control · Powder · Electrical conductivity measured with KEITHLEY model 2000 multimeter; sample pressed into slice.

Electrical TransportTwo contact

Two-probe/multimeter conductivity on pressed slice

2017 · CoP nanoparticles embedded in P and N co-doped carbon as efficient bifunctional electrocatalyst for water splitting

CoP@PNC · Powder · Electrical conductivity measured with KEITHLEY model 2000 multimeter; sample pressed into slice.

Electrical TransportTwo contact

Two-point-probe single-crystal conductivity from J-E curves using Keithley 2400.

2017 · Direct Observation of Confined I−⋅⋅⋅I2⋅⋅⋅I− Interactions in a Metal–Organic Framework: Iodine Capture and Sensing

Activated compound 1 single crystals · Single Crystal · Two ends of single crystals connected to Keithley 2400 with platinum wires and conductive silver paste; I-V curves scanned at voltage ranges set by resistance/sensitivity.

Electrical TransportUnspecified subtype

Conductivity after repeated iodine loading and release.

2017 · Direct Observation of Confined I−⋅⋅⋅I2⋅⋅⋅I− Interactions in a Metal–Organic Framework: Iodine Capture and Sensing

I2@1 iodine-loaded crystals · Single Crystal · Conductivity of I2@1 monitored after iodine removal and recharging; PXRD also tracked crystallinity after cycling.

Electrical TransportFour contact

four-point probe bulk conductivity

2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite

Co3HHTP2/graphite blended pellet · Pellet · compressed M3HHTP2/graphite pellet; Table S1 cited

Electrical TransportFour contact

four-point probe bulk conductivity

2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite

Cu3HHTP2/graphite blended pellet · Pellet · compressed M3HHTP2/graphite pellet; Table S1 cited

Electrical TransportFour contact

four-point probe bulk conductivity

2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite

Fe3HHTP2/graphite blended pellet · Pellet · compressed M3HHTP2/graphite pellet; Table S1 cited

Electrical TransportFour contact

four-point probe bulk conductivity

2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite

Ni3HHTP2/graphite blended pellet · Pellet · compressed M3HHTP2/graphite pellet; Table S1 cited

Electrical TransportUnspecified subtype

current-voltage sweep

2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite

paper chip with four M3HHTP2/graphite blends · Electrode · I-V plots for Cu, Co, Ni and Fe M3HHTP2/graphite blend devices

Electrical TransportUnspecified subtype

Direct-current electrical conductivity on pressed pellet with silver-paint contacts

2017 · Fluorescent metal-organic frameworks for selective sensing of toxic cations (Tl3+, Hg2+) and highly oxidizing anions ((CrO4)2−, (Cr2O7)2−, (MnO4)−)

compound I powdered single-crystal pellet with silver paint contacts · Pellet · Conductivity measured over 200-300 K; single crystals powdered and pressed into 0.4 cm diameter pellets with 0.034-0.045 cm thickness.

Electrical TransportUnspecified subtype

Direct-current electrical conductivity on pressed pellet with silver-paint contacts

2017 · Fluorescent metal-organic frameworks for selective sensing of toxic cations (Tl3+, Hg2+) and highly oxidizing anions ((CrO4)2−, (Cr2O7)2−, (MnO4)−)

compound II powdered single-crystal pellet with silver paint contacts · Pellet · Conductivity measured over 200-300 K; single crystals powdered and pressed into 0.4 cm diameter pellets with 0.034-0.045 cm thickness.

Electrical TransportFour contact

four-probe dc electrical conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

Cr-BTC xerogel pressed pellet · Pellet · Room-temperature four-probe dc measurement on pressed xerogel pellet using Keithley 6221 and 2182A.

Electrical TransportFour contact

four-probe dc electrical conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

Fe-BTC xerogel pressed pellet · Pellet · Room-temperature four-probe dc measurement on pressed xerogel pellet using Keithley 6221 and 2182A.

Electrical TransportFour contact

four-probe dc electrical conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

Fe-BTC-Cr 1:1 xerogel pressed pellet · Pellet · Room-temperature four-probe dc measurement on pressed xerogel pellet.

Electrical TransportFour contact

four-probe dc electrical conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

Fe-BTC-Cr 1:2 xerogel pressed pellet · Pellet · Room-temperature four-probe dc measurement on pressed xerogel pellet.

Electrical TransportFour contact

four-probe dc electrical conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

Fe-BTC-Cr 2:1 xerogel pressed pellet · Pellet · Room-temperature four-probe dc measurement on pressed xerogel pellet.

Electrical TransportFour contact

room-temperature I-V / four-probe conductivity

2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers

1:1 Fe-BTC + Cr-BTC mechanical mixture pressed pellet · Pellet · Room-temperature current-voltage measurement of pressed mechanical mixture pellet.

Electrical TransportUnspecified subtype

Impedance spectroscopy, Bode phase, AC conductivity, and capacitance

2017 · Intercatenated Coordination Polymers (ICPs) of Carboxylato Bridged Zn(II)-Isoniazid and Their Electrical Conductivity

Pressed pellet of 1 with silver-paste electrodes · Pellet · Frequency-dependent capacitance recorded with Agilent 4294A LCR meter; impedance and phase evaluated from 40 Hz to 11 MHz at room temperature.

Electrical TransportUnspecified subtype

Impedance spectroscopy, Bode phase, AC conductivity, and capacitance

2017 · Intercatenated Coordination Polymers (ICPs) of Carboxylato Bridged Zn(II)-Isoniazid and Their Electrical Conductivity

Pressed pellet of 2 with silver-paste electrodes · Pellet · Frequency-dependent capacitance recorded with Agilent 4294A LCR meter; impedance and phase evaluated from 40 Hz to 11 MHz at room temperature.

Electrical TransportUnspecified subtype

Impedance spectroscopy, Bode phase, AC conductivity, and capacitance

2017 · Intercatenated Coordination Polymers (ICPs) of Carboxylato Bridged Zn(II)-Isoniazid and Their Electrical Conductivity

Pressed pellet of 3 with silver-paste electrodes · Pellet · Frequency-dependent capacitance recorded with Agilent 4294A LCR meter; impedance and phase evaluated from 40 Hz to 11 MHz at room temperature.

Electrical TransportFour contact

four-probe electrical conductivity

2017 · Multiple-Hydrogen-Bond Approach to Uncommon Pd(III) Oxidation State: A Pd-Br Chain with High Conductivity and Thermal Stability

Copper-luster rod-like single crystals of compound 3 · Single Crystal · Measured along the chain direction (b axis) in a liquid He cryostat of a Quantum Design PPMS MODEL 6000 with 1 K/min cooling rate; electrical leads attached with carbon paste.

Electrical TransportTwo contact

Two-contact DC conductivity with Pt wires and graphite paste

2017 · Nanosheets of Two-Dimensional Magnetic and Conducting Fe(II)/Fe(III) Mixed-Valence Metal-Organic Frameworks

compound 1 black hexagonal prismatic single crystals · Single Crystal · Current along hexagonal faces, parallel to ab plane; four single crystals; 2-300 K; Ohmic voltage range.

Electrical TransportTwo contact

Two-contact DC conductivity with Pt wires and graphite paste

2017 · Nanosheets of Two-Dimensional Magnetic and Conducting Fe(II)/Fe(III) Mixed-Valence Metal-Organic Frameworks

compound 1 black hexagonal prismatic single crystals · Single Crystal · Current perpendicular to hexagonal faces, along c direction; four single crystals; 2-300 K; Ohmic voltage range.

Electrical TransportTwo contact

Two-contact DC conductivity with Pt wires and graphite paste

2017 · Nanosheets of Two-Dimensional Magnetic and Conducting Fe(II)/Fe(III) Mixed-Valence Metal-Organic Frameworks

compound 2 black single crystals · Single Crystal · Current along hexagonal faces, parallel to ab plane; four single crystals; 2-300 K; Ohmic voltage range.

Electrical TransportTwo contact

Two-contact DC conductivity with Pt wires and graphite paste

2017 · Nanosheets of Two-Dimensional Magnetic and Conducting Fe(II)/Fe(III) Mixed-Valence Metal-Organic Frameworks

compound 2 black single crystals · Single Crystal · Current perpendicular to hexagonal faces, along c direction; four single crystals; 2-300 K; Ohmic voltage range.

Electrical TransportFour contact

four-point probe conductivity/resistivity

2017 · Novel Solid-State Solar Cell Based on Hole-Conducting MOF-Sensitizer Demonstrating Power Conversion Efficiency of 2.1%

Co-DAPV film on glass · Thin Film · Resistivity of Co-DAPV film in dark/ambient condition and under 1 sun illumination.

Electrical TransportFour contact

four-point probe resistivity comparison

2017 · Novel Solid-State Solar Cell Based on Hole-Conducting MOF-Sensitizer Demonstrating Power Conversion Efficiency of 2.1%

iodine-induced hole-doped Co-NDC film on glass · Thin Film · Iodine-induced hole-doped Co-NDC film measured under similar conditions as comparison.

Electrical TransportTwo contact

two-point probe current density versus bias potential

2017 · Novel Solid-State Solar Cell Based on Hole-Conducting MOF-Sensitizer Demonstrating Power Conversion Efficiency of 2.1%

Co-DAPV film on glass · Thin Film · Current density-bias curves for glass, glass/Co-NDC, glass/Co-DAPV in dark, and glass/Co-DAPV under light.

Electrical TransportUnspecified subtype

Current-voltage measurement

2017 · Synthesis and structural characterization of a Cu(II)-based 1D coordination polymer and its application in Schottky devices

ITO/compound 1/Al Schottky device thin film · Thin Film · Keithley 2400 source meter; +/-1 V range; ITO/Material/Al sandwiched Schottky structure.

Electrical TransportFour contact

Two-electrode and four-probe resistance measurements

2017 · Synthesis of ordered carbonaceous frameworks from organic crystals

Ni2-CPDPy873(1) · Powder · Temperature-dependent resistance; high-resistance samples by two-electrode method; low-resistance Ni2-CPDPy973(1) by four-probe method.

Electrical TransportTwo contact

Two-probe conductance measurement

2017 · TCNQ-doped Cu-metal organic framework as a novel conductometric immunosensing platform for the quantification of prostate cancer antigen

antibody-TCNQ-Cu3(BTC)2-SPE · Electrode · After physical adsorption of antibodies on TCNQ-Cu3(BTC)2-SPE.

Electrical TransportTwo contact

Two-probe conductance measurement versus TCNQ incubation time

2017 · TCNQ-doped Cu-metal organic framework as a novel conductometric immunosensing platform for the quantification of prostate cancer antigen

TCNQ-Cu3(BTC)2 SPE incubation-time series · Electrode · Cu3(BTC)2 thin films on SPEs incubated with TCNQ for 0, 6, 12, 18, 24, 30, 36, 42, 48, 54 and 60 h; conductance tabulated in SI Table S1.

Electrical TransportUnspecified subtype

I-V with varied top electrodes

2017 · Thermally Driven Resistive Switching in Solution-Processable Thin Films of Coordination Polymers

Ag-TCNQ thin film on SAM/Au · Thin Film · EGaIn, Ti and Pt contacts; -5 to +5 V I-V, low-voltage fits over -0.3 to +0.3 V

Electrical TransportUnspecified subtype

current-voltage (I-V), Keithley 4200 SCS

2017 · Thermally Driven Resistive Switching in Solution-Processable Thin Films of Coordination Polymers

Ag-TCNQ thin film on SAM/Au · Thin Film · EGaIn top electrodes; resistance fitted over -0.3 to +0.3 V at 300 K, 400 K, then 300 K

Electrical TransportUnspecified subtype

I-V with direct pin contacts

2017 · Thermally Driven Resistive Switching in Solution-Processable Thin Films of Coordination Polymers

pressed pellet of powder Cu-TCNQ · Pellet · Pressed Cu-TCNQ pellet measured at 300 K, 370 K and after cooling to 300 K with direct pins

Electrical TransportUnspecified subtype

I-V with EGaIn top electrodes

2017 · Thermally Driven Resistive Switching in Solution-Processable Thin Films of Coordination Polymers

pressed pellet of powder Cu-TCNQ · Pellet · Pressed Cu-TCNQ pellet measured at 300 K, 370 K and after cooling to 300 K using EGaIn contacts

Electrical TransportUnspecified subtype

current-voltage (I-V), Keithley 4200 SCS

2017 · Thermally Driven Resistive Switching in Solution-Processable Thin Films of Coordination Polymers

Cu-TCNQ thin film on SAM/Au · Thin Film · Cu-TCNQ thin film measured at 300 K, heating at 370 K and cooling back to 300 K.

Electrical TransportFour contact

Four-point probe conductivity

2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting

Pressed NiFe-MOF nanosheet thin film for four-point-probe conductivity · Thin Film · MOF nanosheets scratched from nickel foam and pressed into film/pellet; Signatone four-point probe.

Electrical TransportUnspecified subtype

Single-crystal conductivity measurements

2016 · Coordination environments and π-conjugation in dense lithium coordination polymers

Compound 1 pale yellow plates · Single Crystal · Conductivity measured on single crystals of compounds 1-6; experimental geometry not specified in this article

Electrical TransportUnspecified subtype

Repeated voltage sweep I-V stability test

2016 · Electrical conductivity and electroluminescence of a new anthracene-based metal-organic framework with π-conjugated zigzag chains

Single-crystal NNU-27 conductivity device · Single Crystal · Three cycles sweeping voltage from -5 V to 5 V for the same single crystal.

Electrical TransportTwo contact

Two-probe current-voltage measurement with Keithley 4200 SCS and Cascade M150 probe station

2016 · Electrical conductivity and electroluminescence of a new anthracene-based metal-organic framework with π-conjugated zigzag chains

Single-crystal NNU-27 conductivity device · Single Crystal · Single crystal immobilised between two conducting silver-resin contacts; measurements in dark under ambient/room-temperature air; voltage swept from -5 V to 5 V.

Electrical TransportFour contact

four-point probe, direct-contact approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Pressed pellet, direct-contact probe · Pellet · 297 K, air RH 35%, dark; currents +/-1 to +/-20 nA; four gold-plated tungsten probes, 1.50 mm spacing.

Electrical TransportFour contact

van der Pauw, direct-contact approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Pressed pellet, direct-contact probe · Pellet · Same pellet/environment as four-point probe; 10 nA current; voltage measured with nanovoltmeter; approximately square peripheral probe placement.

Electrical TransportTwo contact

two-contact probe, wire-paste approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Pressed pellet, wire-paste cuboid · Pellet · 297 K, air RH 46%, dark; voltage sweep -1 to 1 V; carbon paste/gold-wire contacts.

Electrical TransportFour contact

four-contact probe, wire-paste approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Pressed pellet, wire-paste cuboid · Pellet · Same environmental conditions as two-contact wire-paste pressed pellet; current sweep -100 to 100 nA.

Electrical TransportTwo contact

air-vacuum cycling, two-contact wire-paste conductivity

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal wire-paste devices for environmental tests · Single Crystal · 297 K, dark; air RH 41%; five air-vacuum cycles; chamber evacuated to about 2e-5 torr.

Electrical TransportFour contact

four-contact probe, bottom-contact approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal bottom-contact devices · Single Crystal · 297 K, air RH 35-45%, dark; current sweeps on three devices.

Electrical TransportTwo contact

two-contact probe, probe-paste approach, sigma_parallel_c

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal probe-paste devices, sigma_parallel_c · Single Crystal · 297 K assumed room temperature, air RH 35-45%, dark; -0.1 to 0.1 V sweep.

Electrical TransportTwo contact

two-contact probe, probe-wire-paste approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal probe-wire-paste devices · Single Crystal · 297 K, air RH 35-45%, dark; -1 to 1 V sweep; conductivity parallel to c axis.

Electrical TransportTwo contactVariable temperature

temperature-dependent two-contact wire-paste conductivity

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal wire-paste devices for environmental tests · Single Crystal · Air RH 36-43%, dark; temperature stepped from 296 to 310 K in 1 K increments, 30 min per step.

Electrical TransportTwo contact

two-contact probe, top-contact approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal top-contact devices · Single Crystal · 297 K, air RH 39%, dark; -1 to 1 V sweep; three devices tested.

Electrical TransportTwo contact

two-contact probe, single-crystal wire-paste approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal wire-paste devices · Single Crystal · 297 K, air RH 30-50%, dark; mostly -0.1 to 0.1 V sweeps; conductivity parallel to c axis.

Electrical TransportFour contact

four-contact probe, single-crystal wire-paste approach

2016 · Measuring and Reporting Electrical Conductivity in Metal-Organic Frameworks: Cd2(TTFTB) as a Case Study

Single-crystal wire-paste devices · Single Crystal · 297 K, air RH 37%, dark; -10 to 10 nA current sweep; conductivity parallel to c axis.

Electrical TransportFour contact

four-probe I-V measurement after guest infiltration

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

MV2+-loaded BMOF film · Thin Film · BMOF/ZnO device soaked in 30 mM MV2+/MeNO2; measured under same conditions as pristine device

Electrical TransportFour contact

Four-probe I-V time-course after MV2+ soaking

2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems

MV2+-loaded BMOF film · Thin Film · MV2+ solution 30 mM/MeNO2; conductivity reported after 24 h, 48 h and 70 h soaking.

Electrical TransportUnspecified subtype

Hg-drop tunnelling junction current-voltage measurement

2016 · Superexchange Charge Transport in Loaded Metal Organic Frameworks

F4-TCNQ-loaded HKUST-1 SURMOF, 5 spray cycles · Thin Film · F4-TCNQ-loaded SURMOF measured in Hg/HDT//SURMOF/CMMT/Au geometry; bias swept as for pristine samples; 5-10 positions averaged.

Electrical TransportUnspecified subtype

Hg-drop tunnelling junction current-voltage measurement

2016 · Superexchange Charge Transport in Loaded Metal Organic Frameworks

Pristine HKUST-1 SURMOF, 5 spray cycles · Thin Film · Passivated mercury-drop top electrode, conductive Au bottom electrode; Hg/HDT//SURMOF/CMMT/Au junction; bias swept -0.5 to -0.01 V and 0.01 to 0.5 V; 5-10 positions averaged.

Electrical TransportUnspecified subtype

Hg-drop tunnelling junction current-voltage measurement

2016 · Superexchange Charge Transport in Loaded Metal Organic Frameworks

TCNQ-loaded HKUST-1 SURMOF, 5 spray cycles · Thin Film · TCNQ-loaded SURMOF measured in Hg/HDT//SURMOF/CMMT/Au geometry; bias swept as for pristine samples; 5-10 positions averaged.

Electrical TransportUnspecified subtype

AC impedance proton conductivity

2015 · A porous proton-relaying metal-organic framework material that accelerates electrochemical hydrogen evolution

benzoate-modified NU-1000 pellet · Pellet · Benzoate-modified NU-1000 pellet exposed to H2O vapour; compared with pristine NU-1000.

Electrical TransportUnspecified subtype

AC impedance proton conductivity

2015 · A porous proton-relaying metal-organic framework material that accelerates electrochemical hydrogen evolution

NU-1000 pellet · Pellet · NU-1000 pellet exposed to H2O vapour at ambient temperature; AC signal 20 mV, 500 kHz to 0.5 Hz.

Electrical TransportFour contact

Standard four-probe electrical conductivity

2015 · A two-dimensional π-d conjugated coordination polymer with extremely high electrical conductivity and ambipolar transport behaviour

General Cu-BHT thin-film samples · Thin Film · Cu-BHT films with thickness 15-500 nm measured by four-probe method.

Electrical TransportFour contact

Four-point probe sheet resistance

2015 · A two-dimensional π-d conjugated coordination polymer with extremely high electrical conductivity and ambipolar transport behaviour

60 nm Cu-BHT film · Thin Film · ST2263 Double Testing Digital Four-probe Tester; constant current 100 uA at room temperature; 11 x 11 mm2 glass substrate; in-line probes with 1 mm spacing and 3 N force.

Electrical TransportFour contactVariable temperature

Four-probe temperature-dependent conductivity in PPMS

2015 · A two-dimensional π-d conjugated coordination polymer with extremely high electrical conductivity and ambipolar transport behaviour

Cu-BHT film for temperature-dependent four-probe conductivity · Thin Film · Constant current 1 uA; PPMS sealed chamber swept from 300 K to 2 K with temperature deviation <0.01 K; Ohmic I-V checked.

Electrical TransportUnspecified subtype

Room-temperature current-voltage (I-V) conductivity measurement

2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications

TMA-Co(II) pressed MOF disk · Pellet · Pressed MOF disk dried at 70 deg C under vacuum for 12 h; transverse current path; Keithley 2400 electrometer; top and bottom conductive carbon-tape electrodes fully overlapping.

Electrical TransportUnspecified subtype

Room-temperature current-voltage (I-V) conductivity measurement

2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications

TMA-Cu(II) pressed MOF disk · Pellet · Pressed MOF disk dried at 70 deg C under vacuum for 12 h; transverse current path; Keithley 2400 electrometer; top and bottom conductive carbon-tape electrodes fully overlapping.

Electrical TransportUnspecified subtype

Room-temperature current-voltage (I-V) conductivity measurement

2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications

TMA-Ni(II) pressed MOF disk · Pellet · Pressed MOF disk dried at 70 deg C under vacuum for 12 h; transverse current path; Keithley 2400 electrometer; top and bottom conductive carbon-tape electrodes fully overlapping.

Electrical TransportTwo contact

DC two-point single-crystal conductivity, I-V sweep from -1 to 1 V

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Cd2(TTFTB) dark red needle single crystals · Single Crystal · Ambient conditions; gold-wire method; two gold wires attached onto both ends of the c axis with carbon paste; 22 crystals from 4 or 5 synthetic batches.

Electrical TransportTwo contact

DC two-point single-crystal conductivity, I-V sweep from -1 to 1 V

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Co2(TTFTB) dark red single crystals · Single Crystal · Ambient conditions; gold-wire method; two gold wires attached onto both ends of the c axis with carbon paste; 22 crystals from 4 or 5 synthetic batches.

Electrical TransportTwo contact

DC two-point single-crystal conductivity, I-V sweep from -1 to 1 V

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Mn2(TTFTB) dark red single crystals · Single Crystal · Ambient conditions; gold-wire method; two gold wires attached onto both ends of the c axis with carbon paste; 24 crystals from 4 or 5 synthetic batches.

Electrical TransportTwo contact

DC two-point single-crystal conductivity, I-V sweep from -1 to 1 V

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Zn2(TTFTB) single crystals · Single Crystal · Ambient conditions; carbon-paste-probe method with tungsten needle probes because crystals were commonly shorter than 300 um; 20 crystals from 4 or 5 synthetic batches.

Electrical TransportFour contact

single-crystal four-point probe conductivity

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Cd2(TTFTB) dark red needle single crystals · Single Crystal · Four-point probe check along the TTF-column/c-axis direction; conditions otherwise not fully detailed.

Electrical TransportFour contact

single-crystal four-point probe conductivity

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Co2(TTFTB) dark red single crystals · Single Crystal · Four-point probe check along the TTF-column/c-axis direction; conditions otherwise not fully detailed.

Electrical TransportFour contact

single-crystal four-point probe conductivity

2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks

Mn2(TTFTB) dark red single crystals · Single Crystal · Four-point probe check along the TTF-column/c-axis direction; conditions otherwise not fully detailed.

Electrical TransportUnspecified subtype

Linear I-V curve

2015 · Chemiresistive Sensor Arrays from Conductive 2D Metal-Organic Frameworks

Drop-cast Cu3(HHTP)2 chemiresistor on interdigitated Au/corundum · Electrode · Chemiresistor device fabricated on interdigitated gold electrodes; current plotted against applied potential.

Electrical TransportUnspecified subtype

Linear I-V curve

2015 · Chemiresistive Sensor Arrays from Conductive 2D Metal-Organic Frameworks

Drop-cast Cu3(HITP)2 chemiresistor on interdigitated Au/corundum · Electrode · Chemiresistor device fabricated on interdigitated gold electrodes; current plotted against applied potential.

Electrical TransportUnspecified subtype

Linear I-V curve

2015 · Chemiresistive Sensor Arrays from Conductive 2D Metal-Organic Frameworks

Drop-cast Ni3(HITP)2 chemiresistor on interdigitated Au/corundum · Electrode · Chemiresistor device fabricated on interdigitated gold electrodes; current plotted against applied potential.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Co-Ca Phosphonate Showing Humidity-Sensitive Single Crystal to Single Crystal Structural Transformation and Tunable Proton Conduction Properties

Pressed CoCa.nH2O pellet for proton conductivity · Pellet · Pressed pellet measured at 25 C under different RH from 40% to 95%; frequency range 1 MHz to 0.1 Hz.

Electrical TransportTwo contact

Two-point-probe pressed-pellet conductivity

2015 · Cu3(hexaiminotriphenylene)2: An electrically conductive 2D metal-organic framework for chemiresistive sensing

Pressed pellet of bulk Cu3(HITP)2 · Pellet · Room-temperature pressed pellet; SI says home-built press with powder between two 2 mm steel rods in a glass capillary.

Electrical TransportTwo contact

Two-point dc pressed-pellet conductivity

2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework

Pressed pellet of 1 · Pellet · Home-built two-electrode screw cell, contact area 0.04757 cm2; I-V profiles collected with Bio-Logic SP200; Ohm's law used to determine sigma.

Electrical TransportTwo contact

Two-point dc pressed-pellet conductivity

2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework

Pressed pellet of 2 · Pellet · Home-built two-electrode screw cell, contact area 0.04757 cm2; I-V profiles collected with Bio-Logic SP200; Ohm's law used to determine sigma.

Electrochemistry ApplicationUnspecified subtype

Photocurrent-voltage (J-V) solar-cell measurement

2015 · Facile interfacial charge transfer across hole doped cobalt-based MOFs/TiO2 nano-hybrids making MOFs light harvesting active layers in solar cells

Iodine-treated Co-BDC/TiO2/FTO photoanode · Electrode · 1 sun (100 mW cm^-2) white-light irradiation; I3-/I- liquid electrolyte; Pt-coated FTO counter electrode.

Electrochemistry ApplicationUnspecified subtype

Photocurrent-voltage (J-V) solar-cell measurement

2015 · Facile interfacial charge transfer across hole doped cobalt-based MOFs/TiO2 nano-hybrids making MOFs light harvesting active layers in solar cells

Pristine Co-BDC/TiO2/FTO photoanode · Electrode · 1 sun (100 mW cm^-2) white-light irradiation; I3-/I- liquid electrolyte; Pt-coated FTO counter electrode.

Electrochemistry ApplicationUnspecified subtype

Photocurrent-voltage (J-V) solar-cell measurement

2015 · Facile interfacial charge transfer across hole doped cobalt-based MOFs/TiO2 nano-hybrids making MOFs light harvesting active layers in solar cells

Iodine-treated Co-NDC/TiO2/FTO photoanode · Electrode · 1 sun (100 mW cm^-2) white-light irradiation; I3-/I- liquid electrolyte; Pt-coated FTO counter electrode.

Electrochemistry ApplicationUnspecified subtype

Photocurrent-voltage (J-V) solar-cell measurement

2015 · Facile interfacial charge transfer across hole doped cobalt-based MOFs/TiO2 nano-hybrids making MOFs light harvesting active layers in solar cells

Pristine Co-NDC/TiO2/FTO photoanode · Electrode · 1 sun (100 mW cm^-2) white-light irradiation; I3-/I- liquid electrolyte; Pt-coated FTO counter electrode.

Electrical TransportTwo contact

Two-probe current-voltage measurement

2015 · Facile interfacial charge transfer across hole doped cobalt-based MOFs/TiO2 nano-hybrids making MOFs light harvesting active layers in solar cells

Iodine-treated Co-NDC LBL film on amine-functionalised glass · Thin Film · Co-based MOF LBL film on amine-functionalised glass slide; sample size 1 x 1 cm^2.

Electrical TransportUnspecified subtype

Conductivity comparison reported for TCuI

2015 · Highly Polarizable Triiodide Anions (I3-) as Cross-Linkers for Coordination Polymers: Closing the Semiconductive Band Gap

TCuI comparison sample · Unknown · Sample geometry and measurement details not specified in this paper; value used as comparison to compound 1.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ELT-bulk · Unknown · Solartron 1260 impedance/gain-phase analyser and 1296 dielectric interface; 1 Hz to 1 MHz; liquid in Kapton washer between stainless steel electrodes; cooled below 210 K then measured stepwise during heating.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ELT@Z100 · Pellet · Powder pressed into pellet with carbon sheet electrodes on both faces; 1 Hz to 1 MHz; cooled below 210 K then measured stepwise during heating.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ELT@Z75 · Pellet · Powder pressed into pellet with carbon sheet electrodes on both faces; 1 Hz to 1 MHz; cooled below 210 K then measured stepwise during heating.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ET-bulk · Unknown · Solartron 1260 impedance/gain-phase analyser and 1296 dielectric interface; 1 Hz to 1 MHz; liquid in Kapton washer between stainless steel electrodes; cooled below 210 K then measured stepwise during heating.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ET@Z100 · Pellet · Powder pressed into pellet with carbon sheet electrodes on both faces; 1 Hz to 1 MHz; cooled below 210 K then measured stepwise during heating.

Electrical TransportFour contact

AC impedance, quasi-four-probe method

2015 · Lithium Ion Diffusion in a Metal-Organic Framework Mediated by an Ionic Liquid

ET@Z75 · Pellet · Powder pressed into pellet with carbon sheet electrodes on both faces; 1 Hz to 1 MHz; cooled below 210 K then measured stepwise during heating.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Fe2(DOBDC)(DMF)2 · Pellet · Guest-free pressed pellet measured at 297 K.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Fe2(DSBDC)(DMF)2 · Pellet · Guest-free pressed pellet measured at 297 K.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Fe2(DSBDC)(DMF)2.x(DMF) · Pellet · Pressed pellet measured at 297 K; area normalised; Fe samples measured with Keithley 2450.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Mn2(DOBDC)(DMF)2 · Pellet · Guest-free pressed pellet measured at 297 K.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Mn2(DSBDC)(DMF)2 · Pellet · Guest-free pressed pellet measured at 297 K.

Electrical TransportTwo contact

two-probe current-voltage; J-E curve

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Mn2(DSBDC)(DMF)2.x(DMF) · Pellet · Pressed pellet measured at 297 K; less conductive Mn samples measured with Keithley 6517B electrometer.

Electrical TransportUnspecified subtype

Flash-photolysis time-resolved microwave conductivity coupled with transient absorption spectroscopy

2015 · Photoinduced Charge-Carrier Generation in Epitaxial MOF Thin Films: High Efficiency as a Result of an Indirect Electronic Band Gap?

Pd porphyrin Zn-SURMOF 2, 1 um FP-TRMC/TAS film · Thin Film · 355 nm Nd:YAG excitation, 5-8 ns pulse, 4.6-9.1 x 10^15 photons cm-2 pulse-1; microwave frequency 9.1 GHz and 3 mW; ambient room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Complex 1a pressed tablet / dried black powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Complex 1b pressed tablet / dried black powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Complex 2a pressed tablet / dried black powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Complex 3a pressed tablet / dried brown powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Complex 4a pressed tablet / dried black powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Polymer 1 pressed tablet / dried gray powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Polymer 2 pressed tablet / dried brown powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Polymer 3 pressed tablet / dried buff powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportFour contact

Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.

2015 · Synthesis, conductivity, and electromagnetic wave absorption properties of chiral poly Schiff bases and their silver complexes

Polymer 4 pressed tablet / dried gray powder · Pellet · Pressed tablet, approximately 1 mm thick, prepared at 15 MPa; room temperature.

Electrical TransportUnspecified subtype

Electrical conductivity under DC bias as a function of temperature

2015 · Thin film thermoelectric metal-organic framework with high seebeck coefficient and low thermal conductivity

TCNQ-infiltrated Cu3(BTC)2 thin-film region A on quartz · Thin Film · Conductivity measured between 10 and 40 deg C using computer-controlled voltage/current source and current amplifier.

Electrical TransportUnspecified subtype

Current-voltage measurement under DC bias

2015 · Thin film thermoelectric metal-organic framework with high seebeck coefficient and low thermal conductivity

TCNQ-infiltrated Cu3(BTC)2 thin-film region A on quartz · Thin Film · Representative I-V measurements on infiltrated region A, transition region B and uninfiltrated region C.

Electrical TransportUnspecified subtype

conductivity cycling under argon flow

2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks

AgNC@Rb-CD-MOF from 10 mM AgNO3 · Single Crystal · Alternating irradiation cycles; 1.48 W/cm2; Ar pressure ~2 atm; wavelength cut-on filter experiment in Figure S5b

Electrical TransportUnspecified subtype

light-intensity-dependent I-V conductivity

2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks

AgNC@Rb-CD-MOF from 10 mM AgNO3 · Single Crystal · Constant temperature 352 K; white-light intensity varied from 314 to 595 mW/cm2 and beyond in Figure 3d

Electrical TransportUnspecified subtype

conductivity versus AgNC volume fraction plot

2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks

AgNC@Rb-CD-MOF from 2 mM AgNO3 · Single Crystal · Samples prepared from 2, 5 and 10 mM AgNO3; conductivity measured under 430 mW/cm2 light irradiation

Electrical TransportTwo contact

two-probe I-V photoconductance/conductivity of thin film

2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks

AgNC@MIL-53 thin-film device on glass with Au electrodes · Thin Film · AgNC@MIL-53 film; dark at 298, 326 and 352 K; photocurrent at 326 and 352 K under 595 mW/cm2 white light

Electrical TransportFour contact

ac impedance using Solartron SI 1260/1296 and Agilent 4294A; quasi-four-probe pellet with gold electrodes

2014 · Control of crystalline proton-conducting pathways by water-induced transformations of hydrogen-bonding networks in a metal-organic framework

pressed pellets of hydrated 1·nH2O · Pellet · frequency range 1 Hz to 100 MHz; RH controlled from 40 to 98% in incubator; bulk conductivity estimated by semicircle fittings of Nyquist plots

Electrical TransportUnspecified subtype

microwave conductivity by cavity perturbation technique

2014 · Control of crystalline proton-conducting pathways by water-induced transformations of hydrogen-bonding networks in a metal-organic framework

as-synthesised 1·3H2O crystals · Single Crystal · single crystal mounted on quartz rod in oxygen-free copper cylindrical TE011 cavity at 16.3 GHz; electric field parallel to 2-D layer; sample coated with paraffin to avoid dehydration

Electrical TransportUnspecified subtype

Arrhenius analysis of AC impedance conductivity

2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion

NBu4-ZIF-8-OH compacted pellet · Pellet · Relative humidity over 96%; temperature-dependent conductivity shown in inset of Figure 4.

Electrical TransportUnspecified subtype

Dielectric spectroscopy-derived real conductivity and Arrhenius analysis

2014 · Dielectric relaxation processes, electronic structure, and band gap engineering of MFU-4-type metal-organic frameworks: Towards a rational design of semiconducting microporous materials

Co-MFU-4 powder heated at 280 C under vacuum · Powder · MFU-4 heated at 280 C and Co-MFU-4 compared at several frequencies; 0.01 Hz used as dc estimate at high temperature.

Electrical TransportFour contact

Four-probe AC impedance, Autolab PGSTAT 302, galvanostatic mode

2014 · Immobilization of N-(3-aminopropyl)-imidazole through MOFs in proton conductive membrane for elevated temperature anhydrous applications

6% encapsulated MOFs membrane · Thin Film · a.c. current amplitude 0.1 mA; frequency range 1 MHz to 50 Hz; heating/cooling 1-2 deg C/min from ambient to 160 deg C and back in air

Electrical TransportFour contact

Four-probe AC impedance, same conductivity protocol

2014 · Immobilization of N-(3-aminopropyl)-imidazole through MOFs in proton conductive membrane for elevated temperature anhydrous applications

PBI membrane · Thin Film · PBI membrane conductivity compared with 6% encapsulated-MOF membrane at investigated temperatures

Electrical TransportFour contact

Four-probe AC impedance, ratio-series conductivity at 160 deg C

2014 · Immobilization of N-(3-aminopropyl)-imidazole through MOFs in proton conductive membrane for elevated temperature anhydrous applications

membranes with MOFs:encapsulated MOFs ratio series · Thin Film · Membranes with total MOF loading 6% and varied ratios of MOFs to encapsulated MOFs; conductivity read from Fig. 11 at 160 deg C

Electrical TransportFour contact

SEM-controlled four-probe van der Pauw electrical conductivity

2014 · Redox control and high conductivity of nickel bis(dithiolene) complex π-nanosheet: A potential organic two-dimensional topological insulator

ox-1 single microflake van der Pauw sample · Nanosheet · Home-made four-tip tungsten system under SEM; microflakes on HMDS-modified silicon wafer; measured from low to high temperatures; sample thickness 1 um by AFM.

Electrical TransportUnspecified subtype

electrochemical impedance spectroscopy (EIS), through-plane dark conductivity

2014 · Solvothermal preparation of an electrocatalytic metalloporphyrin MOF thin film and its redox hopping charge-transfer mechanism

CoPIZA/FTO thin film electrode · Electrode · Solartron SI 1260 impedance analyser with Zplot 2.9; sample between two gold-plated stainless steel electrodes in Solartron 12960 holder; 3.2 MHz to 100 Hz and 16 mHz to 0.1 Hz ranges; 10 mV AC amplitude; conductivity from high-frequency intercept of Nyquist plot.

Electrical TransportTwo contact

DC conductivity by four- or two-contact method on single crystals

2014 · Structural, magnetic and electrical properties of one-dimensional tetraamidatodiruthenium compounds

Compound 1 single crystals and microcrystalline powder · Single Crystal · 300-400 K; Pt wires (25 um) with graphite paste; Quantum Design PPMS-9, Keithley 2400 source meter and Keithley 6514 electrometer; 10 or 20 V in Ohmic range; 0.5 K min-1 cooling/warming.

Electrical TransportTwo contact

DC conductivity by four- or two-contact method on single crystals

2014 · Structural, magnetic and electrical properties of one-dimensional tetraamidatodiruthenium compounds

Compound 4 single crystals and microcrystalline powder · Single Crystal · 300-400 K; Pt wires (25 um) with graphite paste; Quantum Design PPMS-9, Keithley 2400 source meter and Keithley 6514 electrometer; 10 or 20 V in Ohmic range; 0.5 K min-1 cooling/warming.

Electrical TransportTwo contact

DC conductivity by four- or two-contact method on single crystals

2014 · Structural, magnetic and electrical properties of one-dimensional tetraamidatodiruthenium compounds

Compound 7 single crystals · Single Crystal · 300-400 K; Pt wires (25 um) with graphite paste; Quantum Design PPMS-9, Keithley 2400 source meter and Keithley 6514 electrometer; 10 or 20 V in Ohmic range; 0.5 K min-1 cooling/warming.

Electrical TransportUnspecified subtype

Conductivity versus TCNQ exposure time

2014 · Tunable electrical conductivity in metal-organic framework thin-film devices

TCNQ-infiltrated Cu3(BTC)2 thin-film device · Thin Film · Several devices monitored as TCNQ exposure time increased up to roughly 200 h

Electrical TransportUnspecified subtype

Current-voltage (I-V) measurement

2014 · Tunable electrical conductivity in metal-organic framework thin-film devices

As-grown Cu3(BTC)2.xH2O thin-film device on Pt/SiO2 · Thin Film · As-grown hydrated Cu3(BTC)2 thin-film device measured in air

Electrical TransportUnspecified subtype

Current-voltage (I-V) measurement

2014 · Tunable electrical conductivity in metal-organic framework thin-film devices

TCNQ-infiltrated Cu3(BTC)2 thin-film device · Thin Film · TCNQ-infiltrated devices after 72 h exposure to saturated TCNQ/CH2Cl2 solution

Electrical TransportUnspecified subtype

Ambient stability of conductivity over time

2014 · Tunable electrical conductivity in metal-organic framework thin-film devices

TCNQ-infiltrated Cu3(BTC)2 thin-film device · Thin Film · Several TCNQ-infiltrated devices tracked in ambient atmosphere

Electrical TransportVariable temperature

Temperature-dependent I-V and Arrhenius analysis

2014 · Tunable electrical conductivity in metal-organic framework thin-film devices

TCNQ-infiltrated Cu3(BTC)2 thin-film device · Thin Film · Conductivity measured from about 125 K to 300 K; Arrhenius plot of sigma versus 1/T

Electrical TransportUnspecified subtype

Flash photolysis time-resolved microwave conductivity (FP-TRMC)

2013 · Crystal structure and carrier transport properties of a new semiconducting 2D coordination polymer with a 3,5-dimethylpiperidine dithiocarbamate ligand

Complex 1 bulk sample for FP-TRMC · Powder · 355 nm Nd:YAG THG laser, 6.1 mJ cm-2 pulse-1 (5.6 x 10^15 photons cm-2 pulse-1), isotropic polarisation; microwave frequency about 9.1 GHz and power 3 mW; room temperature.

Electrical TransportUnspecified subtype

Single-crystal DC resistivity/conductivity measurement on Au electrodes

2013 · Crystal structure and carrier transport properties of a new semiconducting 2D coordination polymer with a 3,5-dimethylpiperidine dithiocarbamate ligand

Single crystal of 1 on Au electrodes / SiO2 substrate · Electrode · Single crystal on Au electrodes / SiO2 substrate, covered by gold paste; 50 micrometre interelectrode gap; 6 micrometre crystal thickness; room temperature.

Electrical TransportFour contact

Two- or four-contact direct-current electrical conductivity/resistivity measurement

2013 · Electrical bistability around room temperature in an unprecedented one-dimensional coordination magnetic polymer

Ten contacted single crystals of compound 1 · Single Crystal · Ten single crystals measured from 400 to 2 K in Quantum Design PPMS-9 with Keithley 2400 source-meter and Keithley 6514 electrometer; 25 um Pt wires attached with graphite paste; 10 or 20 V constant voltage; 1 K/min cooling/warming cycles.

Electrical TransportUnspecified subtype

DC current-voltage trace from Supporting Information Figure S2

2013 · Electrical bistability around room temperature in an unprecedented one-dimensional coordination magnetic polymer

Ten contacted single crystals of compound 1 · Single Crystal · Single crystal of compound 1 at 300 K; bias swept from -10 to +10 V, showing linear Ohmic behaviour.

Electrical TransportUnspecified subtype

Flash-photolysis time-resolved microwave conductivity (FP-TRMC)

2013 · Mn2(2,5-disulfhydrylbenzene-1,4-dicarboxylate): A microporous metal-organic framework with infinite (-Mn-S-)∞ chains and high intrinsic charge mobility

Activated 1/PMMA FP-TRMC film · Thin Film · 25 deg C ambient; 355 nm Nd:YAG excitation; 1.4e16 photons/cm2 per pulse; microwave power 3 mW and frequency about 9.1 GHz.

Electrical TransportUnspecified subtype

Flash-photolysis time-resolved microwave conductivity (FP-TRMC)

2013 · Mn2(2,5-disulfhydrylbenzene-1,4-dicarboxylate): A microporous metal-organic framework with infinite (-Mn-S-)∞ chains and high intrinsic charge mobility

Methanol-exchanged 1/PMMA FP-TRMC film · Thin Film · 25 deg C ambient; 355 nm Nd:YAG excitation; 1.4e16 photons/cm2 per pulse; microwave power 3 mW and frequency about 9.1 GHz.

Electrical TransportFour contact

Four-probe direct-current electrical conductivity

2013 · Two one-dimensional germanium(IV) coordination polymers based on macrocyclic tetraaza[14]annulene with notable semiconducting property

pressed-pellet powder compaction of compound 1 · Pellet · Pressed-pellet powder compaction measured from 200 to 300 K; Fig. 4 plots conductivity versus temperature.

Electrical TransportFour contact

Four-probe direct-current electrical conductivity

2013 · Two one-dimensional germanium(IV) coordination polymers based on macrocyclic tetraaza[14]annulene with notable semiconducting property

pressed-pellet powder compaction of compound 2 · Pellet · Pressed-pellet powder compaction measured from 200 to 300 K; Fig. 4 plots conductivity versus temperature.

Electrical TransportUnspecified subtype

Flash photolysis-time-resolved microwave conductivity (FP-TRMC)

2012 · High charge mobility in a tetrathiafulvalene-based microporous metal-organic framework

Compound 1/PMMA blend film for FP-TRMC · Thin Film · 25 deg C, ambient conditions, 40/60 wt% MOF/PMMA film; microwave power 3 mW, ~9.1 GHz; 355 nm Nd:YAG third-harmonic pulses; excitation density SI 6.4 x 10^15 cm^-2 photons per pulse; main figure caption 6.5 x 10^15 cm^-2.

Electrical TransportUnspecified subtype

DC conductivity calculated from impedance resistance and pellet geometry; Arrhenius analysis

2012 · Novel semiconducting metal-organic framework: Synthesis, structural characterisation and electrical conductivity studies of manganese based two dimensional coordination polymer

[Mn(mu-pz)(mu-Cl)2]n pellet · Pellet · sigma_dc calculated from inverse resistance multiplied by pellet thickness/area; temperature dependence fitted to Arrhenius behaviour.

Microscopy MorphologyUnspecified subtype

Scanning electron microscopy of conductivity pellet

2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method

MET-3 freshly prepared pressed pellet · Pellet · SEM image of MET-3 pellet used for conductivity measurements; figure caption reports 30000x.

Electrical TransportFour contact

Four-point probe DC conductivity/resistivity measurement

2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method

MET-3 freshly prepared pressed pellet · Pellet · Pressed bulk pellet; 500 micrometre gold electrodes thermally deposited by shadow mask; 1.6 mm electrode spacing; Lake Shore TTP4 station under vacuum.

Electrical TransportFour contactVariable temperature

Temperature-dependent four-point probe I-V curves

2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method

MET-3 freshly prepared pressed pellet · Pellet · Four-probe measurements at 295, 305, 315 and 325 K on MET-3 pellet under vacuum.

Electrical TransportUnspecified subtype

Two-terminal current-voltage measurement with silver-paste contacts to gold electrodes; SCLC analysis at high voltage

2012 · Stable organic radical stacked by in situ coordination to rare earth cations in MOF materials

La-RPF8 single crystal for electrical transport · Single Crystal · Room-temperature I-V along stacking direction (001), low-voltage range -100 to 100 V and high-voltage measurements to 400 V; SCLC regime above 100 V to about 360 V.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 2 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 3 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 4 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 5 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 6 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit

2012 · Synthesis, characterization and solid state electrical properties of 1-D coordination polymer of the type [CuxNi1-x(dadb) ·yH2O]n

Complex 7 powder / pressed pellet · Powder · Pressed pellet, 13 mm die, 6 ton, cured at 110 deg C for 2 h; silver-paint contacts; sequential voltages from +10 to -10 V in 5 V steps; resistance from I/V slope; ambient atmosphere.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 2 compressed pellet · Pellet · Compressed pellet with conductive silver paint contacts; sequential voltages from +10 to -10 V in 5 V steps; temperature range 313-393 K.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 3 compressed pellet · Pellet · Same pellet/contact method as complex 2; temperature range 313-393 K.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 4 compressed pellet · Pellet · Same pellet/contact method as complex 2; temperature range 313-393 K.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 5 compressed pellet · Pellet · Same pellet/contact method as complex 2; temperature range 313-393 K.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 6 compressed pellet · Pellet · Same pellet/contact method as complex 2; temperature range 313-393 K.

Electrical TransportTwo contactVariable temperature

Two-probe variable-temperature specific conductance

2012 · Synthesis, characterization, and solid state electrical conductivity of coordination polymers with copper and zinc

Complex 7 compressed pellet · Pellet · Same pellet/contact method as complex 2; temperature range 313-393 K.

Electrical TransportFour contact

Four point probe conductivity after iodine vapour doping

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

iodine-doped poly(3,4-HBA-Cr-FDA) film on ITO · Thin Film · ITO-supported polymer films exposed to iodine vapour for 1 h, 5 h, or 24 h; conductivity measured between 20 and 80 deg C.

Electrical TransportFour contact

Four point probe conductivity using Keithley 2400 Electrometer

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

undoped poly(3,4-HBA-Cr-FDA) film on ITO · Thin Film · Undoped dip-coated polymer film on ITO; conductivity measured between 20 and 80 deg C.

Electrical TransportUnspecified subtype

solution electrical conductivity in DMSO

2010 · 2-Cyano-2-isonitrosoacetamide and its Ag(I) complexes. Silver(I) cyanoximate as a non-electric gas sensor

0.001 M solution of compound 5 in DMSO · Unknown · 0.001 M DMSO solutions of compounds 4, 5, 6, 7, 8 and 9 compared qualitatively for dissociation behaviour.

Electrical TransportTwo contact

Two-point conductivity after air exposure

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

Air-exposed I2-doped Cu[Ni(pdt)2] film · Thin Film · I2-doped film exposed to air for 12 h, then conductivity noted.

Electrical TransportTwo contact

In situ two-point conductivity during iodine-vapour doping

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

I2-doped Cu[Ni(pdt)2] film at 150 degC · Thin Film · Evacuated Cu[Ni(pdt)2] film exposed to iodine vapour at 150 degC; conductivity recorded versus time.

Electrical TransportTwo contact

In situ two-point conductivity during iodine-vapour doping

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

I2-doped Cu[Ni(pdt)2] film at 50 degC · Thin Film · Evacuated Cu[Ni(pdt)2] film exposed to flowing N2/I2 at 50 degC; conductivity recorded versus time and temperature.

Electrical TransportTwo contact

Two-point conductivity measurement

2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework

Cu[Ni(pdt)2] film on Pt interdigitated electrode · Thin Film · Desolvated Cu[Ni(pdt)2] film on Pt IDE; constant current applied and potential recorded; low-temperature measurements under static N2 while cooling at 2 degC/min.

Electrical TransportFour contact

Four-point probe current-voltage conductivity measurement

2010 · Highly conducting two-dimensional copper(i) 4-hydroxythiophenolate network

pressed CuHT pellet · Pellet · Pressed CuHT pellet measured in nitrogen glove box (<0.1 ppm water and oxygen); K4200 semiconductor parameter analyser; volume resistivity equation in SI.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Cd(BNESAP)]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Co(BNESAP)(H2O)2]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Cu(BNESAP)]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Fe(BNESAP)(H2O)2]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

H2BNESAP compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Mn(BNESAP)(H2O)2]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Ni(BNESAP)(H2O)2]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

Solid-state dc electrical conductivity using LCR Zentech electrometer

2010 · Synthesis, characterization, electrical conductivity, and catalytic studies of some coordination polymers of salen-type schiff base

[Zn(BNESAP)]n compressed pellet · Pellet · Fine powder sieved through 0.2 mesh, pressed into 12 mm diameter and 2-3 mm thick disks at 5 tons cm^-2; silver paste ohmic contacts; measured over 313-413 K.

Electrical TransportUnspecified subtype

d.c. electrical conductivity from pressed tablet during cooling

2009 · 1-Hydroxybenzotriazole (HOBt) acidity, formation constant with different metals and thermodynamic parameters: Synthesis and characterization of some HOBt metal complexes - Crystal structures of two polymers: [Cu2(H2O)5(OBt)2(μ-OBt)2] · 2H2O · EtOH (1A) and [Cu(μ-OBt)(HOBt)(OBt)(EtOH)] (1B)

[Co(OBt)2(HOBt)2(H2O)2] pressed tablet · Pellet · 294-423 K; two linear regimes fitted in Arrhenius form

Electrical TransportUnspecified subtype

d.c. electrical conductivity from pressed tablet during cooling

2009 · 1-Hydroxybenzotriazole (HOBt) acidity, formation constant with different metals and thermodynamic parameters: Synthesis and characterization of some HOBt metal complexes - Crystal structures of two polymers: [Cu2(H2O)5(OBt)2(μ-OBt)2] · 2H2O · EtOH (1A) and [Cu(μ-OBt)(HOBt)(OBt)(EtOH)] (1B)

[Cu(OBt)2(H2O)2] pressed tablet · Pellet · 294-423 K; two linear regimes fitted in Arrhenius form

Electrical TransportUnspecified subtype

d.c. electrical conductivity from pressed tablet during cooling

2009 · 1-Hydroxybenzotriazole (HOBt) acidity, formation constant with different metals and thermodynamic parameters: Synthesis and characterization of some HOBt metal complexes - Crystal structures of two polymers: [Cu2(H2O)5(OBt)2(μ-OBt)2] · 2H2O · EtOH (1A) and [Cu(μ-OBt)(HOBt)(OBt)(EtOH)] (1B)

HOBt solid control · Powder · 294-423 K; tablets pressed at 4 tons/cm2, area 1.37 cm2, thickness 0.12 mm; copper electrodes with silver paste; current sensitivity to 1e-15 A

Electrical TransportUnspecified subtype

d.c. electrical conductivity from pressed tablet during cooling

2009 · 1-Hydroxybenzotriazole (HOBt) acidity, formation constant with different metals and thermodynamic parameters: Synthesis and characterization of some HOBt metal complexes - Crystal structures of two polymers: [Cu2(H2O)5(OBt)2(μ-OBt)2] · 2H2O · EtOH (1A) and [Cu(μ-OBt)(HOBt)(OBt)(EtOH)] (1B)

[Ni(OBt)(Cl)(H2O)2] pressed tablet · Pellet · 294-423 K; multiple linear regimes fitted in Arrhenius form

Electrical TransportTwo contact

Conventional two-probe I-V/conductivity measurement

2009 · A novel lamella 2D Ag(I) coordination polymer of graphite-like structure featuring short interlayer distance

Compacted pellet of 1 · Pellet · Compacted pellet, 0.2 x 0.2 x 0.17 mm; room temperature; I-V curve in SI Fig. S4.

Electrical TransportFour contact

Four-probe PPMS-9 control transport measurement

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

needlelike aggregates of compound 1 without metal ions · Pellet · Needlelike aggregates of compound 1 without metal ions and compound 2 with/without metal ions tested under the same conditions.

Electrical TransportFour contact

Four-probe electrical conductivity in Quantum Design PPMS-9

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

compressed pellet of TTF-Pb microwires · Pellet · Compressed pellet of Pb-linked microwires measured at room temperature.

Electrical TransportFour contactVariable temperature

Four-probe temperature-dependent conductivity in PPMS-9

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

compressed pellet of TTF-Pb microwires · Pellet · Compressed pellet of Pb-linked microwires measured over approximately 140-300 K in SI Figure S13(a); conductivity increases with temperature.

Electrical TransportTwo contact

Two-probe I-V measurement

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

two-probe TTF-Pb microwire device · Electrode · Microwires dispersed in water, drop-cast on SiO2(300 nm)/p+-Si(100), contacted with Au electrodes, and swept between -2 and +2 V at room temperature.

Electrical TransportFour contact

Four-probe electrical conductivity in Quantum Design PPMS-9

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

compressed pellet of TTF-Zn spherical particles · Pellet · Compressed pellet of Zn-linked spherical particles measured at room temperature.

Electrical TransportFour contactVariable temperature

Four-probe temperature-dependent conductivity in PPMS-9

2009 · Semiconducting neutral microstructures fabricated by coordinative self-assembly of intramolecular charge-transfer tetrathiafulvalene derivatives

compressed pellet of TTF-Zn spherical particles · Pellet · Compressed pellet of Zn-linked spherical particles measured over approximately 140-300 K in SI Figure S13(b); conductivity increases with temperature.

Electrical TransportFour contact

four-point probe conductivity

2009 · Soluble semi-conductive chelate polymers containing Cr(III) in the backbone: Synthesis, characterization, optical, electrochemical, and electrical properties

P-1 iodine-doped ITO film · Thin Film · Keithley 2400 electrometer; P-1 ITO film measured from 20 to 80 C after iodine exposure for 0, 3, 5 and 24 h

Electrical TransportFour contact

four-point probe conductivity

2009 · Soluble semi-conductive chelate polymers containing Cr(III) in the backbone: Synthesis, characterization, optical, electrochemical, and electrical properties

P-2 iodine-doped ITO film · Thin Film · P-2 and P-3 iodine-doped films measured at 20 C as a function of doping time up to 24 h

Electrical TransportFour contact

four-point probe conductivity

2009 · Soluble semi-conductive chelate polymers containing Cr(III) in the backbone: Synthesis, characterization, optical, electrochemical, and electrical properties

P-2 dip-coated ITO film, undoped · Thin Film · P-2 undoped and 24 h iodine-doped films measured from 20 to 80 C

Electrical TransportFour contact

Four-contact dc electrical conductivity with Arrhenius analysis

2008 · A conducting coordination polymer based on assembled Cu9 cages

compound 1 conductivity crystal, higher-conductivity specimen · Single Crystal · Single crystal measured in a Quantum Design PPMS-9 with dc currents between 5 and 100 nA; Pt wire contacts along the long needle axis. Figure 2 plots sigma versus T and inset ln sigma versus 1000/T.

Electrical TransportFour contact

Four-contact dc electrical conductivity

2008 · A conducting coordination polymer based on assembled Cu9 cages

compound 1 conductivity crystal, lower-conductivity specimen · Single Crystal · Single crystal measured in a Quantum Design PPMS-9 with dc currents between 5 and 100 nA; Pt wires (25 um diameter) along the needle long axis using graphite paste; cooling/warming rate 0.1 K min-1.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

3,4-HBA monomer, pristine pressed pellet/solid · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped 3,4-HBA pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Cd pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Cd pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Co pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Co pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Cr pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Cr pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Cu pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Cu pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Mn pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Mn pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Ni pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Ni pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Pb pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Pb pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Zn pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Zn pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

P-3,4-HBA-Zr pristine coordination-polymer solid/pellet · Pellet · Pressed pellet; doping time 0 h; 25 °C table condition; atmospheric pressure/room temperature handling.

Electrical TransportFour contact

Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping

2008 · Synthesis and changes of conductivities and thermal stabilities of 4,4′-oxybis [N-(3,4-dihydroxybenzilidene) aniline] chelate polymers

I2-doped P-3,4-HBA-Zr pressed pellet time series · Pellet · Pressed pellet exposed to iodine vapour at atmospheric pressure and room temperature; conductivity tabulated at 24, 48, 72, 96, 120 and 144 h; table caption gives 25 °C.

Electrical TransportUnspecified subtype

solid-state conductivity

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

all products reported in this paper · Pellet · series-level room-temperature conductivity range and activation energy from 303-383 K pellet data

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

CoHg(C7H4NS2)4(phen) · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

CoHg(C7H4NS2)4(phen)3 · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

NiZn(C7H4NS2)4(en) · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

NiZn(C7H4NS2)4(en)3 · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

NiZn(C7H4NS2)4(phen) · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

NiZn(C7H4NS2)4(phen)3 · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportUnspecified subtype

solid-state conductivity of pressed pellet

2002 · Synthesis, characterization and electrical conductivity of mixed-ligand heterobimetallic coordination polymers

NiZn(C7H4NS2)4(py)2 · Powder · room-temperature and temperature-dependent conductivity; 303-383 K plot for all except py2

Electrical TransportFour contact

Standard four-contact d.c. resistance measurement

2000 · Coexistence of ferromagnetism and metallic conductivity in a molecule-based layered compound

Thin shiny brown plate-like single crystals of [BEDT-TTF]3[MnCr(C2O4)3] · Single Crystal · Plate-like single crystals measured from 300 to 2 K; current flowed in the plane of the layers.

Electrical TransportFour contact

Low-temperature magnetoresistance during four-contact d.c. transport

2000 · Coexistence of ferromagnetism and metallic conductivity in a molecule-based layered compound

Thin shiny brown plate-like single crystals of [BEDT-TTF]3[MnCr(C2O4)3] · Single Crystal · Magnetic field up to 5 T applied perpendicular or parallel to the layers; inset plots perpendicular-field data to about 15 K.

Electrical TransportFour contact

Hall measurement by four-probe method

1998 · Solid state electrical conductivity studies on manganese-molybdenum Schiff base polymer

pressed manganese-molybdenum Schiff base polymer pellet · Pellet · Room temperature Hall measurement under 500 gauss magnetic field on 0.24 cm thick pellet

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Cr-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Cu-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Fe-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Mn-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Ni-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

DC electrical conductivity

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Ti-BHPAP polychelate powder · Powder · Pressed pellet at 1000 psi using IR die; silver-paste contacts; sandwiched between graphite electrodes; Keithley electrometer; 304-404 K in air.

Electrical TransportUnspecified subtype

Two-electrode ac conductivity, 1 kHz

1986 · Electrical Semiconductivity of Stacked Layer Coordination Polymers of Rhodium(I)

[Rh(1,3-diisocyanobenzene)2+Cl-]n compressed-powder pellet · Pellet · Room temperature approximately 25 deg C; compressed-powder pellet.

Electrical TransportUnspecified subtype

Two-electrode ac conductivity, 1 kHz

1986 · Electrical Semiconductivity of Stacked Layer Coordination Polymers of Rhodium(I)

[Rh(1,4-diisocyanobenzene)2+Cl-]n compressed-powder pellet · Pellet · Room temperature approximately 25 deg C; compressed-powder pellet.

Electrical TransportUnspecified subtype

Two-electrode ac conductivity, 1 kHz

1986 · Electrical Semiconductivity of Stacked Layer Coordination Polymers of Rhodium(I)

[Rh(1,5-diisocyanonaphthalene)2+Cl-]n compressed-powder pellet · Pellet · Room temperature approximately 25 deg C; compressed-powder pellet.

Electrical TransportUnspecified subtype

Two-electrode ac conductivity, 1 kHz

1986 · Electrical Semiconductivity of Stacked Layer Coordination Polymers of Rhodium(I)

[Rh(4,4'-diisocyanobiphenyl)2+Cl-]n compressed-powder pellet · Pellet · Room temperature approximately 25 deg C; compressed-powder pellet.

Electrical TransportUnspecified subtype

Two-electrode ac conductivity, 1 kHz

1986 · Electrical Semiconductivity of Stacked Layer Coordination Polymers of Rhodium(I)

[Rh(4,4'-diisocyanodiphenylmethane)2+Cl-]n compressed-powder pellet · Pellet · Room temperature approximately 25 deg C; compressed-powder pellet.

Electrical TransportFour contact

Four-probe low-frequency ac conductivity measurement

1986 · Structure, Conductivity, and Magnetic Properties of (Phthalocyaninato)nickel(II) Bromide

single crystals of Ni(pc)Br · Single Crystal · Conductivity measured along the needle axis (c axis, stacking direction); low temperatures obtained with cold N2 gas from liquid N2 boiloff.

Electrical TransportFour contactVariable temperature

four-probe variable-temperature dc conductivity on pressed pellets

1984 · Cofacial Assembly of Metallomacrocycles as an Approach to Controlling Lattice Architecture in Low-Dimensional Molecular Solids. Chemical, Structural, Oxidation-State, Transport, and Optical Properties of the Coordination Polymer [Fe(phthalocyaninato)(μ-pyrazine)]n and the Consequences of Halogen Doping

[Fe(Pc)(mu-pyz)]n prepared by eq 2 · Pellet · Undoped [Fe(Pc)(mu-pyz)]n samples prepared by eq 2 or eq 3; plotted as conductivity versus 10^3/T.

Electrical TransportVariable temperature

fluctuation-induced carrier tunnelling fit to variable-temperature conductivity

1984 · Cofacial Assembly of Metallomacrocycles as an Approach to Controlling Lattice Architecture in Low-Dimensional Molecular Solids. Chemical, Structural, Oxidation-State, Transport, and Optical Properties of the Coordination Polymer [Fe(phthalocyaninato)(μ-pyrazine)]n and the Consequences of Halogen Doping

{[Fe(Pc)(mu-pyz)]I2.60}n · Pellet · Conductivity data for 14-180 K plotted as -[ln(sigma/sigma0)]^-1 versus T and fitted over visually linear intervals from 14-110 K to 14-150 K.

Electrical TransportFour contact

four-probe direct-current electrical conductivity on pressed powder pellets

1984 · Cofacial Assembly of Metallomacrocycles as an Approach to Controlling Lattice Architecture in Low-Dimensional Molecular Solids. Chemical, Structural, Oxidation-State, Transport, and Optical Properties of the Coordination Polymer [Fe(phthalocyaninato)(μ-pyrazine)]n and the Consequences of Halogen Doping

Table VI pressed-powder transport series · Pellet · Pressed powder compactions measured from 77 to 320 K; activation energies from least-squares fits to thermal activation model over 96-300 K.

Raw method vocabulary

These are the exact source-preserving method strings consolidated by this technique group.

Show 873 reported method labels
Raw method labelMapped measurements
two-contact-probe electrical conductivity from linear regression of J-E curves20
variable-temperature two-contact I-V curves fitted to Arrhenius law20
Four-point probe conductivity19
Four-contact probe conductivity on pressed polycrystalline pellet19
four-point probe conductivity16
linear I-V conductivity16
Four-probe electrical conductivity14
Current-voltage (I-V) using Keithley 4200 SCS parameter analyser on Everbeing probe station with EGaIn contact electrode13
Two-point probe current-voltage measurement on pressed pellet12
electrical conductivity with tabulated optical/AFM device dimensions12
four-probe electrical conductivity11
four-point probe van der Pauw conductivity10
Two-contact electrical conductivity from linear sweep voltammetry10
Four-point probe conductivity with Keithley 2400 electrometer10
Four-point probe conductivity with Keithley 2400 electrometer after iodine-vapour doping10
Two-point pressed-pellet conductivity using home-built 2C3PS and Keithley 2636A10
Two-probe electrical conductivity9
Four-point-probe DC conductivity on cold-isostatically pressed pellets; Keithley 4200 SCS; CRX-6.5K probe station; sigma = (I/V) x ln(2)/(pi t)9
Room-temperature conductivity; RTS-8x four-probe apparatus for higher-conductivity range and AS-31356 AC conductivity tester with copper contacts for low-conductivity range.9
Four-probe current-voltage conductivity after guest removal9
Four-probe current-voltage conductivity9
RTS-9 four-point detector9
Variable-temperature electrical conductivity; Arrhenius analysis of ln sigma vs 1/T8
two-probe current-voltage; J-E curve8
two-probe I-V conductivity using Keysight B1500A semiconductor parameter analyser8
Two-probe electronic conductivity8
Current-voltage measurement using Keithley 2450 SMU8
Solid-state dc electrical conductivity using LCR Zentech electrometer8
A.C. impedance / proton conductivity by quasi-four-probe method8
Two-probe conductivity7
Four-point probe bulk electrical conductivity7
linear two-probe electrical conductivity on pressed pellets7
Elemental analysis plus 300 K electrical conductivity, Seebeck coefficient and power factor7
AC impedance, quasi-four-probe method7
solid-state conductivity of pressed pellet7
Temperature-dependent conductivity with Arrhenius fitting7
Current-voltage (I-V) conductivity measurement with Keithley 2400 electrometer7
two-probe I-V conductivity7
Four-point probe electrical conductivity6
four-point probe bulk conductivity6
two-contact probe pellet/powder conductivity after redox treatment6
pressed-pellet two-contact probe I-V6
IV/conductivity control measurement6
Two-probe I-V measurement6
Variable-temperature solid-state DC specific conductance by conventional two-probe technique on Keithley 236 source measure unit6
two-probe single-crystal conductivity6
two-probe current-voltage (I-V) conductivity on pressed pellets6
DC electrical conductivity6
Current-voltage (J-V) photovoltaic measurement6
Four-probe DC conductivity on pressed pellet6
Four-probe electrical conductivity with Loresta-GX MCP-T700; lab-made Seebeck setup with Peltier plates6
Two-probe variable-temperature specific conductance6
Four-point probe5
four-probe dc electrical conductivity5
van der Pauw conductivity5
Four-probe electrical conductivity using an electrometer on iodine-doped pressed pellet5
DC I-V and EIS on pressed pellets5
DC I-V and AC electrochemical impedance spectroscopy5
Variable-temperature I-V and EIS; Arrhenius activation energy fitting5
AC impedance-derived proton conductivity5
Two-electrode pellet conductivity by I-V current scan5
PEIS and dc I-V two-probe pressed-pellet conductivity5
Temperature-dependent four-point-probe conductivity; Arrhenius fit of ln(sigma/sigma_300K) vs 1000/T5
Conductivity-ratio comparison from reported EIS-derived conductivities5
Optical microscopy and geometric dimension measurement for conductivity calculations5
Four-point conductivity, Seebeck and power factor on compressed pellets5
AC complex impedance spectroscopy / EIS ionic conductivity5
conductivity normalised by IEC5
Two-electrode ac conductivity, 1 kHz5
Two-point-probe pressed-pellet conductivity4
Two-contact probe current-voltage measurement4
Four-contact probe DC conductivity on pressed pellet4
Electrical conductivity measurement; method inferred from common four-point-probe instrumentation section4
four-contact probe conductivity4
Pressed-pellet I-V conductivity4
Two-point packed/pressed pellet conductivity4
Current-voltage measurement4
four-probe van der Pauw conductivity4
Two-contact pressed-pellet I-V conductivity4
Variable-temperature conductance and I-V4
variable-temperature two-probe conductance; Arrhenius fit4
Two-probe I-V conductivity on pressed pellet4
four-contact point linear probe bulk conductivity4
Current-voltage (I-V) measurement4
two-probe dc current-voltage conductivity4
four-point probe sheet resistance using Keithley 2400 and Labview4
van der Pauw method (Lakeshore Hall Testing System)4
Collinear / parallel four-probe electrical conductivity on pressed powder pellet4
room-temperature environmental-control conductivity, Seebeck, and power-factor measurements4
two-probe pressed-pellet conductivity4
d.c. electrical conductivity from pressed tablet during cooling4
two-/four-electrode single-crystal I-V conductivity4
four-probe DC conductivity on pelletised powder4
Photocurrent-voltage (J-V) solar-cell measurement4
DC two-point single-crystal conductivity, I-V sweep from -1 to 1 V4
DFT-NEGF current-voltage and conductance; LCAO/PBE/PseudoDojo; Quantum ATK4
Two-contact DC conductivity with Pt wires and graphite paste4
Current-voltage I-V conductivity on pressed pellet4
I-V conductivity test4
AC impedance hydroxide ion conductivity4
Linear sweep voltammetry-derived electrical conductivity4
Two-probe conductivity measurement with Keithley 2636B source meter4
Two-probe current-voltage (I-V) measurement with Keithley source-meter4
solution electrical conductivity with YSI conductance-resistance meter model 344
four-probe electrical powder resistivity/conductivity4
impedance spectroscopy conductivity isotherms4
AC impedance proton conductivity, second cycle4
Arrhenius/temperature-dependent conductivity analysis4
Two-probe I-V conductivity using Keithley 2400 source meter4
Temperature-dependent two-probe I-V conductivity4
Two-probe conductivity after thermal guest removal4
Current-voltage (I-V)4
linear four-point probe conductivity4
AC impedance proton conductivity4
Four-point probe sheet resistance3
Flash-photolysis time-resolved microwave conductivity (FP-TRMC)3
Variable-temperature four-contact probe DC conductivity3
Four-point-probe electrical conductivity3
I-V curves3
Four-point probe electrical conductivity on pressed pellet using Keithley SCS-4200.3
Two-contact probe pressed-pellet I-V conductivity3
Variable-temperature two-contact probe pressed-pellet conductivity3
Four-probe van der Pauw conductivity3
Temperature-dependent four-probe conductivity3
two-probe bulk electrical conductivity on powder pellet3
Pressed-pellet two-point-probe I-V conductivity3
Room-temperature four-probe electrical measurement3
variable-temperature two-probe dc conductivity and Arrhenius fit3
Four-probe current-voltage measurement3
two-contact probe pressed-pellet conductivity3
Conductivity measurement for chloride-modified Ni-HITP.3
Linear I-V curve3
two-point probe linear sweep I-V3
four-point probe3
DC conductivity by four- or two-contact method on single crystals3
Two-probe pressed-pellet I-V conductivity using Keithley 2400 source meter on CRX-4K probe station.3
Four-probe variable-temperature conductivity3
two-probe direct-current electrical conductivity3
Bulk electrical conductivity measurement; method details not specified in the provided main/SI text.3
Arrhenius analysis of proton conductivity3
four-probe pressed-pellet conductivity3
Four-probe variable-temperature conductivity; Arrhenius fit3
proton conductivity from impedance/Nyquist fitting3
Two-contact wire-paste single-crystal conductivity3
PEIS / I-V two-probe pressed-pellet conductivity3
Two-probe current-voltage measurement3
two-contact direct-current I-V measurement on pressed pellet3
AC impedance ionic conductivity with electron-blocking LGPS layers3
Temperature-dependent conductivity, Seebeck coefficient, thermal conductivity and calculated ZT3
Direct-current two-probe conductivity3
Two-probe direct current-voltage (I-V) pellet conductivity3
single-crystal four-point probe conductivity3
Two-probe direct-current conductivity using Keithley model 6517B electrometer voltage source3
four-probe I-V measurement after guest infiltration3
AC conductivity from complex impedance analysis3
Two-point ac impedance spectroscopy; Nyquist plot fitted with equivalent circuit3
Previously reported metal-CP junction I-V characteristic under dark and illuminated conditions.3
Hg-drop tunnelling junction current-voltage measurement3
Four-probe Van der Pauw electrical conductivity from I-V curves using Keithley 42003
Temperature-dependent current-voltage conductivity3
two-probe electrical conductivity3
Two-contact probe electrical conductivity using Keithley 2400 parameter analyser3
AC impedance spectroscopy, conventional two-probe method3
Two-probe current-voltage measurement using Keithley semiconductor characterization system (Model 4200)3
two-probe electrical conductivity using 4200A-SCS parameter analyser3
Electrical conductivity, Seebeck coefficient, Raman thermometry thermal conductivity, power factor and zT3
Electrical conductivity and Seebeck coefficient vs temperature3
Temperature-dependent conductivity, Seebeck coefficient and power factor3
time-dependent conductivity decrease during dry/RH air cycling3
Impedance spectroscopy, Bode phase, AC conductivity, and capacitance3
Dark I-V measurement and Cheung analysis of Schottky junction3
DC two-point I-V conductivity on interdigitated Au electrodes3
DC two-point probe pellet conductivity3
Two-probe cyclic voltammetric conductivity measurement3
four-probe conductivity on pressed-powder pellet3
four-probe I-V conductivity3
Four-point probe bulk conductivity3
Impedance spectroscopy; Nyquist, Bode phase and AC/DC conductivity analysis3
Current-voltage Schottky diode analysis and Cheung method3
SCLC analysis of forward-bias I-V characteristics3
Direct-current two-contact conductivity on single crystals3
Two-point probe electrical conductivity on pressed pellet3
Room-temperature current-voltage (I-V) conductivity measurement3
Room-temperature current-voltage measurements.2
Electrical conductivity comparison, method details not in main text2
Electrical conductivity and Hall effect measurements; ECOPIA Hall effect measurement system2
Dark current-voltage measurement2
I-V measurement under dark and X-ray irradiation2
Four-point probe; Keithley SCS-4200 parameter analyser2
four-contact probe conductivity ageing in air2
Flash photolysis time-resolved microwave conductivity (FP-TRMC)2
Two-probe dc single-crystal conductivity2
Two-point packed-pellet conductivity negative control2
two-probe I-V conductance/conductivity using silver paste electrodes and Keithley 6517B2
AC electrochemical impedance spectroscopy proton conductivity2
Four-probe conductivity on mechanically blended controls2
Conductivity measurement cited from prior literature2
variable-temperature conductivity2
Four-probe direct-current I-V measurement2
Two-contact probe pressed-pellet conductivity and representative I-V curve2
two-probe current-voltage conductivity2
two-probe current-voltage characteristics; Keithley 2635B source meter; thermionic emission/Cheung analysis2
Four-point probe electrical conductivity; temperature-dependent conductivity2
two-probe current-voltage measurement using Keithley 24002
SCLC analysis from I-V and I-V2 plots; Mott-Gurney and den Boer methods2
Temperature-dependent I-V and Arrhenius analysis2
two-terminal current-voltage measurement2
Two-point-probe single-crystal conductivity from J-E curves using Keithley 2400.2
two-terminal I-V2
Temperature-dependent conductivity Arrhenius analysis2
Two-probe I-V on pressed pellets with Keithley 2400 source meter2
Representative I-V plot on pressed pellet2
Two-probe I-V electrical measurement using Keithley 42002
Four-probe electrical conductivity measurement2
Linear four-contact probe; room-temperature I-V with Janis ST-500 probe station and Keithley 2450 sourcemeter2
Two-probe direct current I-V conductivity measurement2
Impedance spectroscopy; Nyquist and frequency-dependent ac conductivity2
Current-voltage measurement and Schottky barrier diode analysis2
two-contact probe single-crystal conductivity2
two-probe I-V2
Two-electrode conductivity on pressed pellet with copper-sheet contacts.2
Four-contact probe electrical conductivity2
Power factor calculated from Seebeck coefficient and electrical conductivity2
Direct-current electrical conductivity on pressed pellet with silver-paint contacts2
Two-probe electrical conductivity using 2602B SYSTEM Source Meter2
Four-point probe temperature-dependent resistivity in PPMS with dilution refrigerator2
Two-point dc pressed-pellet conductivity2
Calculated electrical conductivity from resistance and working-electrode geometry2
Two-probe current-voltage measurement with Keithley 2635B source meter2
Flash-photolysis time-resolved microwave conductivity coupled with transient absorption spectroscopy2
In situ two-point conductivity during iodine-vapour doping2
I-V measurement with Ohmic electrode; Keithley sourcemeter2
Schottky diode current-voltage and thermionic-emission/Cheung analysis2
Two-point probe bulk conductivity on pressed pellet2
Two-probe current-voltage measurement using Keithley 2635B source meter; thermionic emission and Cheung analysis.2
Thermionic-emission/Cheung analysis of I-V curves2
Pellet conductivity using silver-paint contacts and Agilent 4284A LCR meter2
current-voltage (I-V/J-V) measurement and Cheung thermionic-emission analysis2
two-probe electronic conductivity with multimeter2
room-temperature conductivity summary2
four-probe van der Pauw method using Keithley 2400 digital source meter2
parallel four-probe temperature-dependent conductivity2
temperature-dependent conductivity; Arrhenius fit2
Two-probe/multimeter conductivity on pressed slice2
PEIS two-probe pressed-pellet conductivity2
Cheung analysis of forward I-V characteristics2
Space-charge-limited-current analysis from log(I) vs log(V), I vs V2 and forward I-V curves2
Two-probe current-voltage conductivity2
Four-probe direct-current electrical conductivity2
separator ionic conductivity by EIS2
Literature-reported bulk electrical conductivity cited in introduction2
Four-wire resistance conductivity and I-V on activated pressed pellet2
Four-wire resistance conductivity on pressed pellet2
Humidity-dependent EIS/Nyquist proton-conductivity analysis2
Four-point-probe electrical conductivity using Electrometer Entek Electronic FPP-470.2
Temperature-dependent two-point probe electrical transport2
Lateral current-voltage measurement2
Current-voltage measurement using Ecopia HMS-5300 Van der Pauw four-point configuration2
Two-probe direct-current electrical conductivity2
Current-voltage (I-V) under d.c. bias2
two-probe bulk powder-pellet conductivity using Keithley 42002
Flash-photolysis time-resolved microwave conductivity (FP-TRMC) with TAS-derived carrier generation yield2
frequency-dependent total conductivity derived from impedance2
Four-point probe conductivity measurement2
Four-point-probe solid electrical conductivity using Electrometer Entek Electronic FPP-470.2
frequency-dependent AC conductivity derived from LCR/electrical measurements2
Temperature-dependent conductivity and Arrhenius analysis2
Ecopia 7000 Photonic Hall measurement system, van der Pauw configuration2
FIB-assisted conductivity measurement2
CV and EIS-derived redox conductivity2
Two-contact direct-current conductivity using Keithley 2450 SourceMeter2
Temperature-dependent conductivity and Arrhenius activation-energy analysis2
four-probe I-V and variable-temperature conductivity2
AC impedance conductivity versus temperature; Arrhenius-like fit2
AC impedance hydroxide conductivity under light-on/light-off cycling at varied relative humidity2
AC impedance hydroxide conductivity under light-on/light-off cycling at varied temperature2
two-probe I-V on ligand control2
Two-probe conductivity, Advantest R6245 multimeter2
Variable-current I-V measurement2
DC electrical conductivity on pressed pellets; SI describes conventional four-probe method using current-voltage fits2
two-probe DC current-voltage sweep2
Two-probe current-voltage and Schottky diode analysis2
Ionogel conductivity/resistivity measurement; instrument details not fully specified in main text2
Four-probe electrical conductivity in Quantum Design PPMS-92
Four-probe temperature-dependent conductivity in PPMS-92
temperature-dependent four-probe conductivity / resistivity2
Four-point probe method2
Electrical conductivity versus pellet density2
Ambient stability of conductivity2
DC I-V and EIS MIEC analysis2
two-contact I-V conductivity2
I-V characteristics; thermionic emission theory; Cheung's method2
two-probe current-voltage conductivity measurement2
current-voltage (I-V), Keithley 4200 SCS2
DC I-V conductivity2
solvent-dependent DC I-V conductivity2
temperature-dependent DC I-V Arrhenius analysis2
X-ray diffraction (Ultima IV, Cu K alpha)2
Optical-characterisation-derived electrical conductivity and thin-film parameters2
A.C. impedance conductivity2
molar electrical conductivity, Radelkis OK 102/1 conductometer2
impedance spectroscopy and frequency-dependent AC conductivity2
current-voltage measurement and thermionic-emission/Cheung analysis2
Hall effect and four-contact/four-probe conductivity2
two-probe I-V; SMU B1500A2
Direct-current electrical resistivity/conductivity using Ultra High Resistance Meter R83402
Literature/reported comparator DC conductivity and activation-energy measurement2
Two-probe direct-current conductivity with Keithley 2611 sourcemeter in PPMS liquid-He cryostat2
four-electrode conductivity in PPMS-92
two-probe current-voltage dc sweep using Keithley 2400 source-meter2
I-V measurement2
Temperature-dependent current-voltage (I-V)2
van der Pauw variable-temperature conductivity and I-V2
Two-probe direct-current conductivity2
Four-probe conductivity on pressed pellet2
Van der Pauw electrical conductivity from I-V curves2
electrical conductivity-temperature curve2
Temperature-variable four-probe conductivity2
Four-probe conductivity2
Two-contact resistance with silver dag contacts2
Powder electrical conductivity2
temperature-dependent in-plane four-contact conductivity/resistivity2
Arrhenius activation energy from conductivity2
Four-probe electrical conductivity (RTS-9)2
Current-voltage measurement under dark and 980 nm illumination2
quasi-four-electrode AC impedance; Solartron 1260 impedance/gain-phase analyser; conductivity from Debye semicircle in Nyquist plot2
Arrhenius analysis of temperature-dependent proton conductivity2
AC impedance spectroscopy; proton conductivity2
four-probe conductivity2
temperature-dependent in-plane resistivity; four-contact conductivity2
Solution conductivity measurement2
Four-probe DC conductivity on Hall-bar device1
Two-probe DC I-V conductivity1
Not measured in this paper; conductivity cited from prior Ni3(HITP)2 report.1
Four-point-probe bulk electrical conductivity on pressed pellets1
Pellet conductivity measurement.1
Four-probe variable-temperature conductance and Zabrodskii analysis.1
Two-probe and four-probe DC current-voltage sweeps plus AC variable-temperature conductance.1
Standard four-probe electrical conductivity1
Four-probe temperature-dependent conductivity in PPMS1
PXRD after conductivity measurement1
Repeated two-contact conductivity measurements over time1
two-terminal I-V conductivity1
four-point probe, direct-contact approach1
two-contact probe, in situ press, resistance-thickness regression1
van der Pauw, direct-contact approach1
two-contact probe, wire-paste approach1
four-contact probe, wire-paste approach1
two-contact probe, Ga-Sn or In-Ga-Sn alloy approach1
air-vacuum cycling, two-contact wire-paste conductivity1
four-contact probe, bottom-contact approach1
two-contact probe, probe-paste approach, sigma_parallel_c1
two-contact probe, probe-paste approach, sigma_perpendicular_c1
two-contact probe, probe-wire-paste approach1
temperature-dependent two-contact wire-paste conductivity1
two-contact probe, top-contact approach1
two-contact probe, single-crystal wire-paste approach1
four-contact probe, single-crystal wire-paste approach1
Pressed-pellet current-voltage measurement1
Two-probe pressed-pellet resistivity/conductivity measurement1
Variable-temperature electrical conductivity fit to 3D Mott variable-range hopping1
Temperature-dependent four-point-probe conductivity and Arrhenius analysis1
Current-voltage measurement under X-ray irradiation1
I-V measurement under X-ray dose rates1
literature-cited electronic conductivity statement1
Two-contact bulk conductivity on pressed pellet1
Standard four-contact d.c. resistance measurement1
Low-temperature magnetoresistance during four-contact d.c. transport1
I-V curves and conductivity of particle-size-tuned pressed pellets1
Four-point probe conductivity of metalated pressed pellets1
Variable-temperature conductivity fitted to Arrhenius equation1
variable-temperature four-contact conductivity / Arrhenius fit1
variable-temperature four-contact conductivity / Arrhenius and VRH fits1
Four-point variable-temperature DC conductivity1
Pressed-pellet conductivity and impedance measurements1
Two-point DC conductivity on single-crystal FET devices1
Flash photolysis-time-resolved microwave conductivity (FP-TRMC)1
Two-point pressed-pellet conductivity1
Single-crystal out-of-plane conductivity1
Variable-temperature van der Pauw conductivity measurement1
conductivity cycling under argon flow1
light-intensity-dependent I-V conductivity1
conductivity versus AgNC volume fraction plot1
temperature-dependent I-V conductivity and Arrhenius analysis1
two-probe I-V photoconductance/conductivity of thin film1
Temperature-dependent four-point conductivity and Arrhenius fitting1
Electrical conductivity and EIS proton-conductivity control measurements1
Four-point electrical conductivity and EIS proton conductivity1
Two-point-probe electrical conductivity1
van der Pauw electrical conductivity on pellet.1
van der Pauw electrical conductivity and I-V measurement.1
vertical two-probe conductivity1
Literature-reported Cu-CAT conductivity cited in introduction1
room-temperature I-V / four-probe conductivity1
Four-contact/four-probe pressed-pellet electrical conductivity1
Two-probe variable-temperature electrical conductivity under high vacuum1
AC impedance proton conductivity, two-probe, VSP-300 BioLogic1
AC impedance spectroscopy on a two-contact pressed pellet1
Conductivity after saturated acetonitrile-vapour exposure1
Two-contact pressed-pellet conductivity measurement1
In situ two-contact conductance during gas adsorption1
Conductivity survey of electron-beam and stencil-mask fabricated single-crystal devices1
Hall-effect measurement from current-voltage slopes at each magnetic field1
Temperature-dependent I-V characteristics and cool-down/warm-up conductivity1
Two-probe c-axis conductivity measurement1
Four-probe pressed-pellet conductivity and temperature dependence1
Four-probe and device conductivity measurement versus temperature; basal-plane single-crystal transport1
Four-point probe conductivity comparison after alternative metal-ion exposure1
Temperature-dependent Seebeck coefficient and I-V curves1
Hall effect, van der Pauw method1
Arrhenius analysis of conductivity vs 1/T1
Infrared reflectance and Kramers-Kronig optical conductivity1
Four-point electrical conductivity with AC bridge and I-V ohmic-contact check.1
variable-temperature two-probe conductivity1
Van der Pauw Hall effect1
Local lateral two-probe measurement in FET-style h-BN device1
Two-probe lateral conductivity on 10 devices1
Van der Pauw DC conductivity1
temperature-dependent two-point I-V and Arrhenius plot1
four-point probe conductivity on pressed pellet1
two-point digital multimeter conductivity screen1
Linear four-contact / four-point probe conductivity1
Variable-temperature four-point conductivity and Arrhenius fitting1
Two-terminal I-V conductivity on pressed pellets1
Variable-temperature conductivity1
van der Pauw electrical conductivity1
DC electrical conductivity versus temperature at constant voltage1
two-probe I-V measurement1
temperature-dependent two-probe I-V and Arrhenius analysis1
Conductivity calculated from conductance/resistance and device geometry1
Flexible-device I-V and bending-resistance statistics1
Two-terminal source-drain I-V with Au electrodes and varying channel length1
Temperature-dependent normalised conductance/conductivity1
Current-voltage (I-V) electrical contact assessment1
four-point probe conductivity before/after ambient storage1
current-voltage sweep1
Pressed-pellet two-point-probe I-V conductivity after sonication1
I-V curves after ageing1
Cited two-probe pellet conductivity literature comparison1
Two-probe electrical measurement of thin-film current normalised by thickness as sigma/C01
Electronic conductivity measurement1
temperature-dependent four-point probe conductivity; Arrhenius fit1
four-point probe conductivity of metalated pellets1
Conductivity versus TCNQ exposure time1
I-V comparison for TCNQ, F4-TCNQ and H4-TCNQ guest-infiltrated films1
Ambient stability of conductivity over time1
Variable-temperature DC resistance/conductivity1
four-contact probe variable-temperature electrical conductivity1
current-voltage measurement1
Conductivity after repeated iodine loading and release.1
Photoelectric I-V and photocurrent switching measurement under 450 W xenon lamp.1
Variable-temperature two-point-probe I-V and Arrhenius analysis of lg(G) versus 1/T.1
two-contact probe electrical transport, linear I-V1
Room-temperature four-probe conductivity and Seebeck coefficient1
Repeated H+ dedoping/doping conductivity cycling1
Four-point probe conductivity on spin-coated films1
Four-point probe conductivity on pressed pellets1
Variable-temperature conductivity; ln sigma versus 1/T activation-energy fits1
Time-dependent conductivity after annealing1
van der Pauw electrical conductivity and variable-temperature Arrhenius analysis1
four-probe single-crystal conductivity under air and vacuum1
four-probe single-crystal conductivity with FIB-deposited Pt contacts1
electrochemical impedance spectroscopy conductivity estimate1
two-electrode current-voltage measurement on Pt IDE1
two-electrode pellet I-V conductivity1
Two-probe I-V on pressed material1
Two-probe I-V on pressed pellet1
Temperature-dependent two-probe I-V and Mott variable-range hopping analysis1
Current-voltage (I-V) measurement using Keithley 2401 sourcemeter1
two-point I-V conductivity measurement1
Hall effect measurement, van der Pauw geometry1
Room-temperature two-probe and four-probe I-V measurement1
Low-temperature four-contact superconductivity transport1
Four-probe temperature-dependent resistivity and conductivity1
DC resistance/conductivity by direct probe1
Two-probe I-V temperature-dependent conductivity with Keithley 4200 source meter.1
Two-probe current-voltage measurement with Keithley 2635B source meter; thermionic-emission and Cheung-equation analysis1
Temperature-dependent I-V conductivity measurement1
Four-contact I-V measurement1
van der Pauw conductivity on pressed pellet-based devices1
Four-probe conductivity on pressed pellet samples1
Electrical conductivity mapping using patterned electrodes1
two-probe DC current-voltage conductivity on pressed pellets1
electrochemical impedance spectroscopy, two-probe configuration1
Linear sweep voltammetry / two-contact pressed-pellet conductivity1
Two-contact pressed-pellet conductivity1
Variable-temperature four-contact pressed-pellet electrical conductivity1
Two-probe or four-probe conductivity values compiled in Table 11
Four-probe conductivity measurement using Keysight B2901 source meter1
Two-probe I-V and resistance measurement using Keithley 2400 Source Meter1
Four-point collinear current-voltage transport measurement1
Temperature-dependent four-point electrical conductivity1
Four-electrode conductivity1
current-voltage photovoltaic measurement1
Room-temperature conductivity measurement.1
Pressed-pellet conductivity using a home-built press1
Conductivity stability assessment1
Van der Pauw conductivity from four-probe I-V curves1
I-V curves from two-point probe devices1
Four-point probe conductivity using EBL-fabricated Au electrodes and Keithley 4200 analyser1
Two-point probe conductivity on pelletised scraped powder1
Variable-temperature four-point-probe conductivity1
Four-point probe conductivity/resistivity1
Two-probe I-V conductivity measurement1
Temperature-dependent powder-pellet conductivity1
Two-probe powder-pellet electrical conductivity1
Four-probe van-der-Pauw temperature-dependent conductivity1
Figure of merit ZT calculated from Seebeck coefficient, conductivity and thermal conductivity1
Two-probe current-voltage measurement of ITO/CP 1/Al MS junction using Keithley 2635B SourceMeter1
Photoresponse I-V measurements under varied light wavelength and intensity1
Two-terminal square resistance converted to conductivity on iodine-loaded pressed powder film1
Two-terminal square resistance converted to conductivity on pressed powder film1
regular four-terminal electrical conductivity1
Seebeck coefficient and four-terminal electrical conductivity on same devices1
Conductivity annotation, CV, charge-discharge, and rate-performance plots for CNF@c-MOF-CNT nanopaper1
Standard four-probe conductivity measurement on Advanced Instrument Technology CMT-SR2000N1
Electrical conductivity bar chart for CNF@Ni-HITP-10 and CNF@Ni-HITP-15 nanopapers1
heterogeneous transport model fit to conductivity-temperature data1
conductivity versus air-exposure time1
2-probe and 4-probe conductivity measurements in synthesis screen1
four-point-probe electrical conductivity1
temperature-dependent conductivity and Seebeck coefficient under high vacuum1
electrical conductivity, Seebeck coefficient, power factor, thermal conductivity, and ZT1
Electrical conductivity measurement of fabricated composite hydrogels1
current-voltage (I-V) and Schottky-diode analysis under dark and photoillumination1
Two-terminal d.c. current-voltage measurement with gold blocking electrodes1
Two-terminal d.c. current-voltage measurement with PdHx proton-injecting electrodes1
Two-terminal d.c. current-voltage comparison of wild-type and mutant reflectin films with PdHx electrodes1
two-point probe I-V on pressed pellet1
I-V and EIS on sputtered Pt electrode devices1
Repeated voltage sweep I-V stability test1
Two-probe current-voltage measurement with Keithley 4200 SCS and Cascade M150 probe station1
Four-point probe electrical conductivity measurement (RTS-8, China)1
Electrical conductivity measurement; method not explicitly tied to graphite paper, likely same four-point-probe setup used for products1
SI Table S3 substrate electrical-conductivity comparison1
SI Table S3 substrate thermal-conductivity comparison1
Electrical conductivity measurement using an Agilent 34420A nanovoltmeter1
Single-crystal DC resistivity/conductivity measurement on Au electrodes1
Two-point conductivity after air exposure1
Two-point conductivity measurement1
conductivity measurement, method not separately specified1
Two-probe linear sweep voltammetry conductivity measurement.1
polarized reflectivity converted to optical conductivity by Kramers-Kronig transformation1
Two-probe current-density-voltage (J-V) measurement using Keithley 2635B; Cheung analysis of Schottky diode parameters1
four-point probe resistivity/conductivity on pressed pellet1
four-point probe after electrolyte soaking1
conductivity comparison from bar chart1
Co-linear four-point-probe conductivity1
Van der Pauw four-point DC conductivity1
temperature-dependent two-probe DC conductivity/resistivity1
proton conductivity by impedance after humidity-induced dehydration1
temperature-dependent proton conductivity from AC impedance; Arrhenius analysis1
Literature conductivity value cited in introduction; no new measurement method reported1
Hall effect measurement, van der Waals/four-point probe mode1
Unpolarised light photoresponse and I-V1
four-point probe conductivity/resistivity1
four-point probe resistivity comparison1
two-point probe current density versus bias potential1
Two-probe electrical conductivity measurement1
Two-probe I-V/electrical conductivity measurement on regenerated compound 11
Regenerated-sample comparison by IR, XPS, TGA, electrical conductivity and UV-vis-NIR diffuse reflectance1
two-probe capacitance versus frequency measurement1
Four-terminal longitudinal conductivity1
single-crystal DC I-V conductivity measurement1
two-contact DC I-V conductivity measurement1
pressed-pellet DC I-V conductivity measurement1
current-voltage / current-density-voltage measurement with Keithley 2400 source meter1
electronic conductivity comparison1
parallel four-probe direct-current electrical conductivity1
steady-state ultrafast THz spectroscopy, frequency-resolved complex THz conductivity1
Four-probe AC impedance, Autolab PGSTAT 302, galvanostatic mode1
Four-probe AC impedance, same conductivity protocol1
Four-probe AC impedance, ratio-series conductivity at 160 deg C1
two-contact probe conductivity1
two-contact probe DC I-V conductivity1
Photoinduced single-crystal conductivity under monochromatic and white-light illumination1
Hall resistance by van der Pauw geometry1
van der Pauw conductivity after air oxidation1
van der Pauw variable-temperature conductivity1
Arrhenius analysis of temperature-dependent conductivity1
Time-dependent cyclic proton-conductivity durability test1
Quasi-four-probe impedance spectroscopy using a Zennium electrochemical workstation1
Impedance spectroscopy / proton conductivity measurement1
Literature proton conductivity measurement1
Literature-supported conductivity discussion; no direct conductivity measurement reported in this article1
inferred conductivity evidence from Raman, XPS/XAS and EIS1
Double-probe current-voltage measurement using self-assembled vacuum device and Keithley 4200-SCS1
Temperature-dependent conductivity fitted with Nernst-Einstein relation1
Schottky diode I-V1
Schottky diode I-V and transient photocurrent1
temperature-dependent conductivity; Arrhenius activation-energy analysis1
Arrhenius analysis of LSV-derived conductivity1
Two-probe linear sweep voltammetry conductivity1
ionic liquid viscosity and conductivity measurement1
normalisation of ionic conductivity by Li/Ni molar ratio1
Current-voltage (I-V) chemiresistive sensing1
Time-resolved microwave conductivity (TRMC), 355 nm Nd:YAG excitation1
Classical molecular dynamics with empirical potential and Green-Kubo thermal-conductivity calculation in LAMMPS.1
Four-point linear probe bulk conductivity1
Two-probe current-voltage (I-V)1
solution electrical conductivity in DMSO1
Four-probe powder electrical conductivity1
Variable-temperature van der Pauw electrical conductivity1
literature-referenced electrical conductivity1
four-point probe electrical conductivity1
DC conductivity calculated from impedance resistance and pellet geometry; Arrhenius analysis1
four-probe variable-temperature dc conductivity on pressed pellets1
fluctuation-induced carrier tunnelling fit to variable-temperature conductivity1
four-probe direct-current electrical conductivity on pressed powder pellets1
ac impedance using Solartron SI 1260/1296 and Agilent 4294A; quasi-four-probe pellet with gold electrodes1
microwave conductivity by cavity perturbation technique1
Four-point probe DC conductivity after iodine-vapour exposure1
Four-point probe DC conductivity/resistivity measurement1
Temperature-dependent four-point probe I-V curves1
Scanning electron microscopy of conductivity pellet1
Room-temperature conductivity of pressed pellet1
two-contact probe electrical conductivity1
Current-voltage sweep1
Current-voltage measurement and thermionic-emission Schottky-barrier calculation1
AC impedance spectroscopy, two-probe method, Solartron 1260/1296A, 1 Hz to 10 MHz1
AC impedance conductivity measurement of Mg(TFSI)2 salt control1
Temperature-dependent electrical conductivity from Ecopia HMS-5300 Van der Pauw measurement1
Temperature-dependent electrical conductivity and Arrhenius analysis1
Electrical conductivity after drying; instrument/geometry not specified1
Current-voltage sweep using potentiostat in two-electrode configuration1
Two-terminal I-V of composite catalyst1
I-V and DMC response after ambient storage1
I-V and DMC sensing after ethanethiol poisoning1
DC two-point single-crystal conductivity perpendicular to c axis1
Direct-current I-V curves under varied humidity and atmosphere1
I-V curves at different voltage sweep rates1
SEM-controlled four-probe van der Pauw electrical conductivity1
Electrochemical impedance spectroscopy and Arrhenius conductivity1
Photocurrent-time and dark I-V response1
four-probe electrical conductivity with carbon paste electrodes, HUSO HECS-994C multichannel resistivity meter1
temperature-dependent four-probe electrical conductivity1
electrochemical impedance spectroscopy (EIS), through-plane dark conductivity1
Impedance-derived total conductivity versus frequency1
Current-voltage measurement and Schottky diode parameter extraction1
temperature-dependent four-probe conductivity1
Two-probe d.c. current-voltage conductivity on pressed pellets1
Four-contact dc electrical conductivity with Arrhenius analysis1
Four-contact dc electrical conductivity1
Two-probe I-V measurement using Keithley 4200 SCS semiconductor parameter analyser1
Conductivity comparison reported for TCuI1
AC impedance conductivity of pressed pellets in a solid-state battery testing mould1
conductivity measurement1
SCLC dark I-V trap-density measurement1
Two-contact probe conductivity1
electrical conductivity measurement; method details not reported1
Two-probe electrical conductivity after iodine doping1
Variable-temperature conductivity and Arrhenius fitting1
Thermogravimetric analysis and normalised conductivity storage test1
I-V characterisation of 100 nm device contacts1
Four-terminal conductivity using electron-beam-lithography contacts1
Four-probe conductivity with Au shadow-mask pads1
Four-probe conductivity with 15 um electrode spacing1
two-terminal current-voltage sweep with microprobes1
two-probe single-crystal I-V under dark and light1
pressed-pellet room-temperature current-voltage conductivity1
Two-probe I-V conductivity with Keithley 2400 source meter / semiconductor analyser1
solid-state conductivity1
four-probe I-V measurement after C60 exposure1
four-probe I-V measurement with ZnO parallel resistance subtraction1
Four-probe I-V measurement with Keithley 2400 source meter and LabView1
four-probe conductivity after solvent washing/soaking1
Four-probe I-V time-course after MV2+ soaking1
LAMMPS molecular dynamics with UFF4MOF for MOF, literature IL force field, direct drift-velocity conductivity analysis1
Two-probe electrical conductivity during air oxidation1
Room-temperature four-probe conductivity on pressed pellets1
Variable-temperature four-contact conductivity; Arrhenius and Mott VRH fits1
Four-contact resistance measurement converted to conductivity; DynaCool physical property measurement system1
Two-probe IV conductivity on powder compacts1
Four-probe low-frequency ac conductivity measurement1
Four-point-probe electrical conductivity of physical mixtures1
Two-point ac impedance spectroscopy1
I-V curve slope comparison1
AC conductivity calculated from dielectric loss1
pellet fabrication for dielectric/impedance/conductivity measurements1
electrical conductivity1
I-V characteristics and resistance extraction versus contact separation1
Electrical conductivity under DC bias as a function of temperature1
Current-voltage measurement under DC bias1
Current-voltage I-V conductivity on pressed pellets1
Single-crystal DC current-voltage measurement1
Two-electrode and four-probe resistance measurements1
Arrhenius analysis of AC impedance conductivity1
four-probe bulk conductivity1
Two-point probe current-voltage measurement, Keithley 4200A-SCS1
I-V characteristics under dark and light radiation1
I-V curves of aNi-HAB in air and vacuum1
Four-probe I-V conductivity measurement.1
FIB-assisted in situ four-point/two-point conductivity measurement with W nanomanipulators and Au pads1
Electrical resistivity/I-V measurement of transparent conducting electrode1
Computed optical conductivity sigma(omega) versus photon energy for polarised light directions.1
Electrochemical impedance spectroscopy; conductivity calculated as sigma = L/RA1
EIS conductivity after SSP immersion1
I-V curves before/after GA and DNA modification1
Quantum Patch / Loewdin orthogonalisation electronic couplings and Nelsen four-point reorganisation energies1
Seebeck and two-point resistance in controlled N2/H2O humidity environment1
Countercation-dependent CV and EIS redox conductivity1
Electrochemical impedance spectroscopy-derived redox conductivity1
Repeated redox-conductivity switching by EIS1
Two-ohmic-contact current-voltage measurement of crystal conductivity1
Photosensitivity, responsivity, and detectivity estimation from dark/light I-V response1
Two-probe I-V conductivity1
I-V control1
Frequency-dependent AC conductivity1
Temperature-dependent DC conductivity1
Space-charge-limited-current fitting of I-V curves1
I-V curves on thickness series1
Four-probe I-V measurement with Keithley source meter controlled by PET I-V test system1
Two-probe electrical conductivity from ohmic I-V curves and impedance responses1
Two-probe electrical conductivity from pellet measurements1
Powder X-ray diffraction before and after conductivity testing1
AC impedance hydroxide conductivity cycling after storage1
Single-crystal conductivity by clamping individual crystals between circular gold relay contacts and measuring resistance with a voltmeter.1
AC impedance-derived proton conductivity versus relative humidity1
Time-dependent proton conductivity stability test1
3D bond percolation / interrupted strand conductivity model1
Current-voltage curves1
AC impedance spectroscopy; humidity-dependent proton conductivity1
Cyclic voltammetry used as conductivity evidence1
Ambient direct-current electrical conductivity1
Proton conductivity measurement1
Temperature-dependent AC electrical conductivity and dielectric permittivity by Agilent 4263B LCR meter1
Two-contact single-crystal resistance/conductivity by clamping crystals between gold relay surfaces1
Two-probe conductance measurement1
Two-probe conductance measurement versus TCNQ incubation time1
temperature-dependent two-probe conductivity and Arrhenius analysis1
Four-point probe DC conductivity1
Four-point probe DC conductivity under controlled relative humidity1
Two-electrode current-voltage measurement1
Two-probe current-voltage sweeps on gel memristor1
UV-Vis Tauc plot, ultraviolet photoelectron spectroscopy (UPS), and temperature-dependent four-point-probe conductivity1
pH and conductivity measurements for real water samples1
Post-recycling tensile and conductivity testing1
Planar current-voltage measurement with Keithley 24011
Four-probe PPMS-9 control transport measurement1
Current-voltage measurement and conductivity extraction1
two-point probe measurement1
Cheung's method analysis of I-V data1
Two-probe current-voltage (I-V) control measurements1
Two- or four-contact direct-current electrical conductivity/resistivity measurement1
DC current-voltage trace from Supporting Information Figure S21
Four-probe bulk electrical conductivity on pressed powder pellet1
Two-contact current-voltage measurement on pressed pellet1
Batch-to-batch reproducibility of conductivity and Seebeck1
Temperature-dependent conductivity and Seebeck after annealing1
Two-probe current-voltage (I-V) measurement with Keithley 2635B sourcemeter1
Two-probe I-V leakage-control measurement1
Conductivity monitoring under air exposure and O2 annealing1
Two-terminal DC conductance/conductivity during H2 annealing1
Four-electrode I-V verification and impedance spectroscopy1
Four-point probe current-voltage conductivity measurement1
Four-probe I-V and temperature-dependent conductivity1
Two-probe photodetector electrical measurement with Keithley 4200 semiconductor analysis system1
current-voltage characteristics under dark conditions1
Conductivity assessment1
current-voltage characteristic1
two-contact probe current-voltage measurement1
Two-terminal current-voltage measurement with silver-paste contacts to gold electrodes; SCLC analysis at high voltage1
Two-terminal I-V measurement with source meter under dark, 445 nm and 520 nm illumination1
conductivity suitability statement for Selectrode construction1
Arrhenius analysis of temperature-dependent EIS conductivity1
film conductivity as a function of Cu-bix amount1
AC conductivity from LCR measurements; sigmaAC = A omega^S analysis1
I-V with varied top electrodes1
I-V with direct pin contacts1
I-V with EGaIn top electrodes1
Literature conductivity value cited for introduced Cu-MOF-30 min layer1
two-probe I-V curve1
two-point probe conductivity from I-V curve1
impedance spectroscopy conductivity isotherms and Nyquist/CPE fitting1
Arrhenius analysis of EIS ionic conductivity1
AC impedance proton conductivity under varied pelletisation torque1
Two-probe DC resistance in air1
Cyclic bending test with electrical-conductivity retention1
ZEM-3 standard four-probe thermoelectric measurement1
Two-probe electrical conductivity using PPMS1
Thermionic-emission and Cheung analysis of I-V data1
Two-probe current-voltage (I-V) measurement1
Logarithmic I-V and power-law analysis1
Powder X-ray diffraction (PXRD), Rigaku Ultima IV1
two-electrode DC current-voltage measurement with DC power supply and Keithley 480 picoammeter1
Hall measurement by four-probe method1
AC impedance / Bode conductivity1
I-V comparison for amine-doped NDI(CPOH)2-SCs1
two-probe I-V conductivity after vacuum pretreatment and hydrazine doping1
temperature-dependent I-V1
I-V and conductivity monitoring during ammonia adsorption/desorption cycles1
Two-electrode current-voltage characteristics of compressed pellets1
Two-probe temperature-dependent conductivity1
Conventional two-probe I-V/conductivity measurement1
reported conductivity from cited Ni3(HiTP)2 literature1
Literature/reported impedance spectroscopy and flash-photolysis time-resolved microwave conductivity1
Extraction/digitisation of reported proton conductivity values from prior MOF papers1
FET I-V and liquid-gate transfer curves using Keysight B1500A1
Four point probe conductivity after iodine vapour doping1
Four point probe conductivity using Keithley 2400 Electrometer1
parallel-electrode current-voltage and four-probe electrical conductivity1
variable-temperature four-probe conductance1
pellet conductivity measurement1
Temperature-dependent I-V / Arrhenius analysis1
Current-voltage (I-V) measurement using Autolab PGSTAT302N with FRA32M1
Current-voltage characteristics by cyclic voltammetry1
Four-point-probe I-V and temperature-dependent single-crystal conductance1
Two-probe temperature-dependent conductivity on single-crystal and polycrystal devices1
Variable-temperature DC conductivity by van der Pauw method1
Dielectric spectroscopy-derived real conductivity and Arrhenius analysis1
four-contact probe I-V1
In situ DC electrical resistivity/conductivity, two-probe1
Two-contact conductivity after iodine vapour exposure1
Four-point probe electrical conductivity on pressed powder pellets1
Four-probe sheet resistance1
Four-point-probe resistance measurement; I-V curve1
In-plane ionic conductivity using home-made aperture with Ag/AgCl electrodes; I-V slopes1
Streaming-potential I-V measurement after dropping electrolyte onto one side of CCM film1
Thermal-conductivity estimation, UV-vis-NIR absorption, IR thermal imaging, solar simulator1
Current-voltage curves in air using Keithley 2400 two-point probe arrangement1
Two-probe I-V conductivity on a single nanowire1
Alternating-current impedance converted to real conductivity1
Two-probe direct-current through-plane conductivity after gold contact coating1
two-probe I-V control1
single-crystal conductivity before/after anion exchange1
two-probe conductivity after pH soaking1
in situ conductivity at 100 C1
four-probe van der Pauw electrical conductivity1
variable-temperature conductivity and Arrhenius analysis1
Two-point probe electronic conductivity from EIS-fitted resistance1
electrical conductivity and tap-density measurement1
Temperature-dependent I-V and conductivity measurement using Keithley 2602B source meter, two-probe method1
temperature-dependent four-contact in-plane conductivity1
AC impedance conductivity1
Current-voltage (I-V) curves1
Electrochemical impedance spectroscopy (EIS) ionic conductivity1
Electrical conductivity values cited from Chen et al. 20201
Mettler Toledo S230 SevenCompact conductivity meter1
MD-derived in-pore ionic conductivity1
Four-probe conductivity, DFP-02 Basic Model1
4-point probe conductivity/resistivity1
Two-probe electrochemical impedance spectroscopy (EIS)1
Two-probe I-V method by CV1
AC impedance spectroscopy / proton conductivity1
Arrhenius activation energy from proton conductivity1
Electrical conductivity test1
electrical conductivity measurement reported from cited prior Cu-THQ synthesis paper1
Four-probe bulk conductivity1
SEM/AFM/XRD/XPS/contact angle/electronic conductivity tests1
electronic conductivity measurement1
qualitative classification; no first-hand conductivity measurement1
micro four-point probe (M4PP)1
Time-dependent proton conductivity monitoring1
Conductivity calculated from NH3-exposure impedance spectra1
Quasi-four-probe electrochemical impedance spectroscopy; PARSTAT 2273; 0.1 Hz-1 MHz; 100 mV AC1
Single-crystal conductivity measurements1
Temperature-dependent resistivity and Arrhenius conductivity fitting1
Two-point probe with semiconductor analyser and electrochemical workstation1
time-dependent proton conductivity measurement1
Four-point probe bulk pellet conductivity1
Temperature-dependent proton conductivity / Arrhenius activation energy1
Proton conductivity/off-on humidity screen from Figure S81
conductivity (literature-referenced)1
current-voltage (I-V)1
Four-probe electrochemical impedance spectroscopy1
conductivity under repeated bending1
I-V measurement with two Ag electrodes1
Hall effect measurements in van der Pauw configuration1
Self-powered photodetector I-T, I-V, photocurrent-power, responsivity, detectivity and oscilloscope response tests1
Flexible self-powered photodetector I-T, I-V, photocurrent-power, responsivity, detectivity and oscilloscope response tests1
Powder X-ray diffraction (Ultima IV)1
Two-point-probe linear-sweep I-V conductivity1
Four-point van der Pauw conductivity1