N2 adsorption-desorption; BET surface area and pore-size distribution
2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring
CuBTA powder · Powder · Measured using Micromeritics ASAP 2460
Gas adsorption/desorption, BET, BJH and pore-size analyses.
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.
The same technique may serve transport, electrochemistry, sensing or another scientific purpose.
Filter source method wording, sample context and scientific purpose.
892 measurements
2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring
CuBTA powder · Powder · Measured using Micromeritics ASAP 2460
2026 · 1D Conductive Metal-Organic Framework-Enabled Dual-Parameter MEMS Gas Sensor for Thermal Runaway Monitoring
NiBTA powder · Powder · Measured using Micromeritics ASAP 2460
2026 · Activating a Metallization Switch for Record Hydrogen Evolution in Single-Atom Modified Polar MOF Piezocatalysts
Ni SAs@UiO-66-NH2(Hf) powder · Powder · BET and pore metrics for UiO-66, UiO-66-NH2 and Ni SAs@UiO-66-NH2.
2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries
CH as-synthesised powder · Powder · CH N2 sorption, type IV Langmuir isotherm; pore-size distribution inset.
2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteries
CNH as-synthesised powder · Powder · CNH N2 sorption, type IV Langmuir isotherm; pore-size distribution inset.
2026 · Bismuth-based conductive MOF/COF hybrids enable efficient electrochemical heavy metal ion quantification
COF powder/microspheres · Powder · Specific surface area, pore size and pore volume of COF; supporting plot is cited in SI Fig. S1D and checked in the rendered SI surrogate.
2026 · Construction of a high-performance electrochemical sensor based on intrinsically conductive Co-HHTQ-MOF for imidacloprid detection
Co-HHTQ-MOF powder · Powder · BET surface area and BJH pore size distribution measured by nitrogen adsorption-desorption.
2026 · Facile Preparation of Polymorphic Metal–Organic Framework Nanostructures as Microwave Absorbers via One-Pot Hydrothermal Reaction
Cu-TCNQ powder · Powder · 77 K nitrogen adsorption-desorption; Anton Paar NOVA 3200e.
2026 · Facile Preparation of Polymorphic Metal–Organic Framework Nanostructures as Microwave Absorbers via One-Pot Hydrothermal Reaction
Fe-TCNQ powder · Powder · 77 K nitrogen adsorption-desorption; Anton Paar NOVA 3200e.
2026 · Facile Preparation of Polymorphic Metal–Organic Framework Nanostructures as Microwave Absorbers via One-Pot Hydrothermal Reaction
Ni-TCNQ powder · Powder · 77 K nitrogen adsorption-desorption; Anton Paar NOVA 3200e.
2026 · Intrinsically Conductive π-d Conjugated Layers with Co–N4 Active Sites for Efficient Nitrate Electrocatalysis and Zinc-Nitrate Batteries
Co3(HITP)2 powder · Powder · BET surface area measured using Micromeritics ASAP 2020 Plus; Co3(HITP)2 compared with HITP linker.
2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks
Eu-HHTP powder · Powder
2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks
Gd-HHTP powder · Powder
2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks
Sm-HHTP powder · Powder
2026 · Isoreticular Modulation of Electrical Conduction and Magnetic Properties in Semiconducting Lanthanide-based Based Metal−Organic Frameworks
Tb-HHTP powder · Powder
2026 · Microenvironment modulation in heterometallic MOFs for tailoring electron/proton transport and hydrophilicity toward photocatalytic hydrogen production
Ni-Ca dark brown crystals / powder · Powder
2026 · Microfluidic Printing-Induced Dynamic Splitting of Conductive MOF to Expose High-Density Active Sites for Boosted CO2 Electroreduction
MF-cMOFQ1.28/t5 · Nanosheet · N2 adsorption-desorption isotherms at 77 K; specific surface area reported.
2026 · Microfluidic Printing-Induced Dynamic Splitting of Conductive MOF to Expose High-Density Active Sites for Boosted CO2 Electroreduction
ST-cMOF · Powder · N2 adsorption-desorption isotherms at 77 K; specific surface area reported.
2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage
Ni/Fe-MOF control powder · Powder · 77 K; BET calculated over P/P0 0.05-0.30
2026 · Nanostructured zinc-doped nickel/iron metal–organic framework electrode material for an efficient energy storage
Pyrolysed Zn-doped Ni/Fe-MOF-derived carbon powder · Powder · 77 K; BET calculated over P/P0 0.05-0.30
2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes
Cd2(TTFTB) MOF powder/crystals · Powder · 77 K; activated under vacuum at 60 deg C for 12 h; BELMaster analysis
2026 · Structure–Property Engineering of Redox-Active Tetrathiafulvalene- and Bipyridine-Based Metal–Organic Frameworks for Battery Cathodes
TTF-hybrid-MOF powder/crystals · Powder · 77 K; DCM solvent exchange ca. 3 days; activated/dried; BELMaster analysis
2026 · Tailoring Li-ion Storage and Transport in Two-Dimensional Conjugated Metal-Organic Frameworks via Precise Nitrogen Incorporation
Cu-N2-OHBA bulk powder crystals · Powder
2026 · Tailoring Li-ion Storage and Transport in Two-Dimensional Conjugated Metal-Organic Frameworks via Precise Nitrogen Incorporation
Cu-N4-OHBA bulk powder crystals · Powder
2026 · Tunable Charge Transport Properties Through Precise π-Stacking Modulation in Isostructural Porous Molecular Conductors
PMC-3-Br single crystals · Single Crystal · N2 at 77 K and CO2 at 195 K on PMC-3-Br using BELSORP-max; sample had reduced crystallinity after solvent loss.
2025 · 2D Rhodium-Isocyanide Frameworks
as-prepared SJTU-201 powder · Powder · activated by anhydrous dioxane immersion for 12 h, then dynamic vacuum at 180 C for 8 h
2025 · 2D Rhodium-Isocyanide Frameworks
as-prepared SJTU-202 powder · Powder · activated by anhydrous dioxane immersion for 12 h, then dynamic vacuum at 180 C for 8 h
2025 · 2D Rhodium-Isocyanide Frameworks
as-prepared SJTU-203 powder · Powder · activated by anhydrous dioxane immersion for 12 h, then dynamic vacuum at 180 C for 8 h
2025 · A Conductive Cu-Based Metal–Organic Framework Ribbon with High-Density Redox-Active Centers as Cathode for Stable High-Capacity Lithium-Ion Batteries
activated DDA-Cu MOF powder · Powder · Specific surface area and pore diameter from physisorption
2025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor
C-Ni1.5Co1.5(HITP)2 powder · Powder · Specific surface area and pore size distribution for C-Ni1.5Co1.5(HITP)2.
2025 · A Cu-based electronically conducting metal–organic framework with π–d conjugation for cathode and anode modification in aqueous zinc-ion batteries
DDA-Cu powder · Powder · Microscopy and BET/pore analysis of DDA-Cu powder; BET data are reported in main text but tied to Fig. S1.
2025 · A novel 2D conductive MOF nanobelts for highly efficient electrosynthesis of hydrogen peroxide
Ni-PTC-60 · Powder · ASAP-2460-4N; samples degassed at 423 K for 12 h; BET fit from 0.05-0.25 relative pressure.
2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals
Cu3F2HHTP2 blue powder/rod crystals · Powder · N2 isotherm at 77 K after outgassing at 120 degC under dynamic vacuum until outgas rate <2 mTorr/min.
2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals
Cu3FHHTP2 blue powder/rod crystals · Powder · N2 isotherm at 77 K after outgassing at 120 degC under dynamic vacuum until outgas rate <2 mTorr/min.
2025 · Asymmetrical Substitution Manipulates Stacking Modes in 2D Conductive MOF Crystals
Cu3HHTP2 powder/rod crystals · Powder · N2 isotherm at 77 K after outgassing at 120 degC under dynamic vacuum until outgas rate <2 mTorr/min.
2025 · Bimetal MOF nanosheets as efficient anode materials for lithium-ion batteries
CoxFe1-x-MOF powder/nanosheet series · Nanosheet · Specific surface area measured for Co-MOF, Co3/4Fe1/4-MOF, Co1/2Fe1/2-MOF, Co1/4Fe3/4-MOF, and Fe-MOF.
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 · 77 K krypton sorption; edge-on sample evacuated at 80 C for 24 h
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 · 77 K krypton sorption; sample evacuated at 80 C for 24 h; normalised per film area per 100 nm
2025 · Conductive MOFs with tailored polarization loss for broadband absorption at ultrathin thickness
CuM-HHTP sample set · Powder · MICROMERITICS TriStar II 3020; type-IV isotherms; SI Table S1 reports BET surface area, pore volume, and average pore size.
2025 · Construction of 1D Molecular Conductive Wires Through a Polarized Gene Weaving Strategy for Efficient Electromagnetic Wave Absorption
Pristine CuTBTT-1D powder/ribbon network · Powder · Measured at 77 K; samples degassed at 60 C for 8 h before gas adsorption.
2025 · Construction of 1D Molecular Conductive Wires Through a Polarized Gene Weaving Strategy for Efficient Electromagnetic Wave Absorption
Pristine CuTBTT-2D nanosheets · Powder · Measured at 77 K; samples degassed at 60 C for 8 h before gas adsorption.
2025 · Construction of a portable and sensitive electrochemical immunosensor for the rapid detection of erythromycin based on semiconductive bimetallic MOF
As-synthesised CuxFe3-x(HHTP)2 powder · Powder · N2 sorption isotherm and pore distribution of CuxFe3-x(HHTP)2.
2025 · Construction of nanozyme based with mixed valence manganese oxide loaded on defective metal-organic frameworks for sensitive detection of biomarker procalcitonin
dPCN-224 nanoparticles · Powder · BET and DFT analysis of dPCN-224; figures S4A-S4B are in incomplete SI text layer, but numeric values are reported in main text.
2025 · Controlling the Spatiotemporal Self-Organization of Stimuli-Responsive Nanocrystals under Out-of-Equilibrium Conditions
2D RD Ni3(HITP)2 interface particles · Powder · 30-45 mg samples, activated as in SI Section S2, degassed at 100 C under vacuum for one day, measured at 77 K on Micromeritics 3Flex.
2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field
As-synthesised Cu3(HHTP)2 powder · Powder · Nitrogen adsorption at 77 K using MicroActive for ASAP 2460; pore size and pore volume derived from adsorption isotherms.
2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field
As-synthesised Cu3(HITP)2 powder · Powder · Nitrogen adsorption at 77 K using MicroActive for ASAP 2460; pore size and pore volume derived from adsorption isotherms.
2025 · Cu─X Bonds Regulated Conduction and Polarization Loss in Conductive Metal-Organic Framework Under Electromagnetic Field
As-synthesised Cu3(THT)2 powder · Powder · Nitrogen adsorption at 77 K using MicroActive for ASAP 2460; pore size and pore volume derived from adsorption isotherms.
2025 · Development of an electrochemiluminescence aptasensor combining covalent-triazine framework emitter with exonuclease III-driven DNA walker for sensitive CEA detection
purified CTF powder · Powder · BET area, pore volume, and pore-limiting diameter of CTF.
2025 · Development of an electrochemiluminescence aptasensor combining covalent-triazine framework emitter with exonuclease III-driven DNA walker for sensitive CEA detection
CuxMn3-x(HITP)2 powder · Powder · BET area and dominant pore size for CuxMn3-x(HITP)2 from SI Fig. S4c-d.
2025 · Dual single atomic Fe-Ni sites in N‑doped nanoporous carbon for high-efficiency potassium periodate activation toward pollutant abatement
Fe2Ni1-NC-900 · Powder · Autosorb-IQ3 gas sorption at -196 deg C; BET surface areas and isotherm type discussed for NC-900, Ni-NC-900, Fe-NC-900 and Fe2Ni1-NC-900.
2025 · Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices
CuNi-HHTP nanorods · Powder · BET surface area, BJH average pore size, and BJH pore volume for Cu-HHTP, Ni-HHTP, and CuNi-HHTP.
2025 · Electrically Conducting Redox-Complementary Dual-Ligand 2D Graphitic MOF with Orthogonal Charge Transport Pathways
CDL-MOF1 microcrystalline black powder · Powder · Evacuated CDL-MOF1 measured at 77 K with Quantachrome Autosorb iQ Gas Sorption Analyzer.
2025 · Electro Fenton degradation of glyphosate by incrassated defect-free conductive Cu metal organic framework
Cu-HHTP powder · Powder · N2 adsorption-desorption at 78 K; BET/Langmuir/pore-volume values from rendered SI Table S1 and pore-size/isotherm discussion from main Fig. 1.
2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media
Co3(HHTP)2 microcrystalline powder · Powder · Measured at 77 K after acetone activation overnight and degassing at 100 deg C under vacuum.
2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media
Cu3(HHTP)2 microcrystalline powder · Powder · Measured at 77 K after acetone activation overnight and degassing at 100 deg C under vacuum.
2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media
Ni3(HHTP)2 microcrystalline powder · Powder · Measured at 77 K after acetone activation overnight and degassing at 100 deg C under vacuum.
2025 · Employing Triphenylene-Based, Layered, Conductive Metal-Organic Framework Materials as Electrochemical Sensors for Nitric Oxide in Aqueous Media
Zn3(HHTP)2 microcrystalline powder · Powder · Measured at 77 K after acetone activation overnight and degassing at 100 deg C under vacuum.
2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance
as-synthesised ZnCo-MOF-ABDC powder · Powder · Micromeritics ASAP 2460; BET surface area and BJH pore volume/pore-size distribution.
2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance
as-synthesised ZnCo-MOF-BDC powder · Powder · Micromeritics ASAP 2460; BET surface area and BJH pore volume/pore-size distribution.
2025 · Engineering the structures of ZnCo-MOFs via a ligand effect for enhanced supercapacitor performance
as-synthesised ZnCo-MOF-HMIM powder · Powder · Micromeritics ASAP 2460; BET surface area and BJH pore volume/pore-size distribution.
2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks
Cu-S-HHS solvothermal powder · Powder · Soaked in water 3 x 6 h, solvent exchange with acetone 3 x 6 h, vacuum dried room temperature 6 h, degassed at 80 C for 6 h; N2 at 77 K.
2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks
Cu-Se-HHS solvothermal powder · Powder · Soaked in water 3 x 6 h, solvent exchange with acetone 3 x 6 h, vacuum dried room temperature 6 h, degassed at 80 C for 6 h; N2 at 77 K.
2025 · Enhanced Electrical Conductivity by the Heavy Chalcogen Effect in Metal-Organic Frameworks
Cu-Te-HHS solvothermal powder · Powder · Soaked in water 3 x 6 h, solvent exchange with acetone 3 x 6 h, vacuum dried room temperature 6 h, degassed at 80 C for 6 h; N2 at 77 K.
2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs
Co-Ni(TPA)-2 · Powder · Liquid nitrogen temperature.
2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs
Ni(TPA) · Powder · Liquid nitrogen temperature; adsorption/desorption isotherms and DFT pore size distribution.
2025 · Enhancing electrochemical hydrogen storage in nickel-based metal-organic frameworks (MOFs) through zinc and cobalt doping as bimetallic MOFs
Zn-Ni(TPA)-2 · Powder · Liquid nitrogen temperature.
2025 · Enhancing the Electrochemical Energy Storage of Metal-Organic Frameworks: Linker Engineering and Size Optimization
Primary Ni-MOF powder series · Powder · N2 adsorption/desorption isotherms at 77 K; Micromeritics JW-BK200C volumetric instrument
2025 · Extension of charge separation distance over isolated dual-metal sites in metal-organic frameworks for efficient CO2 photoreduction
CuCo-THQ powder · Nanosheet · CO2 uptake measured for Cu-THQ and CuM-THQ; pressure axis shown to 750 mmHg in Fig. 1e.
2025 · Extension of charge separation distance over isolated dual-metal sites in metal-organic frameworks for efficient CO2 photoreduction
CuCo-THQ powder · Nanosheet · Micromeritics ASAP 2020 surface area analyzer; SI Fig. S8, Fig. S9 and Table S2 cited.
2025 · Flexible 8 V planar supercapacitors: Unleashing ionic liquid transport via Co/Ni/Mn-MOFs nanorod pore-channel modulation
Mn-MOF powder · Powder · BET/BJH measured on Co-MOF, Ni-MOF and Mn-MOF; SI prose reports qualitative pore-size distributions.
2025 · Flexible conductive metal-organic framework Cu3(HHTP)2 film with high thermoelectric performance for low-grade heat harvesting
Cu3(HHTP)2 nanorod powder · Powder · Cu3(HHTP)2 powder activated at 80 C for 12 h before sorption analysis.
2025 · From 0D to 2D: Microwave-assisted synthesis of electrically conductive metal-organic frameworks with controlled morphologies
0D spherical Cu-HHTP powder · Powder · N2 sorption isotherms measured by Micromeritics ASAP 2020 PLUS porosimeter.
2025 · From 0D to 2D: Microwave-assisted synthesis of electrically conductive metal-organic frameworks with controlled morphologies
1D rod-like Cu-HHTP powder · Powder · N2 sorption isotherms measured by Micromeritics ASAP 2020 PLUS porosimeter.
2025 · From 0D to 2D: Microwave-assisted synthesis of electrically conductive metal-organic frameworks with controlled morphologies
2D sheet-like Cu-HHTP powder · Powder · N2 sorption isotherms measured by Micromeritics ASAP 2020 PLUS porosimeter.
2025 · High-resolution structure of Zn3(HOTP)2 (HOTP = hexaoxidotriphenylene), a three-dimensional conductive MOF
Activated Zn3(HOTP)2 for N2 sorption · Powder · Micromeritics ASAP 2020 Plus; activated at 90 deg C under high dynamic vacuum for 24 h; N2 at 77 K in liquid nitrogen bath.
2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks
Ni3(HI12)2 activated powder · Powder · N2 sorption at 77 K; samples dried under vacuum r.t. 2 h, ramped to 60 C over 2 h and held 2 h
2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks
Ni3(HI18)2 activated powder · Powder · N2 sorption at 77 K; samples dried under vacuum r.t. 2 h, ramped to 60 C over 2 h and held 2 h
2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks
Ni3(HITP)2 activated powder · Powder · N2 sorption at 77 K; samples dried under vacuum r.t. 2 h, ramped to 60 C over 2 h and held 2 h
2025 · Highly sensitive and selective electrochemical sensor for carbendazim detection in fruit juice using novel bi-metallic metal organic framework anchored graphite rod electrode
Self-standing Ni-Fe(PDC)/GR electrode · Electrode · Quantachrome Autosorb 3-B; samples degassed at 120 deg C for 12 h before BET analysis.
2025 · Highly sensitive electrochemiluminescence glucose sensor under alkaline conditions based on glucose oxidase@conductive metal-organic framework nanocapsules
GOx@Zn-HHTP nanocapsule powder · Powder · N2 sorption of GOx@Zn-HHTP nanocapsules.
2025 · Impact of the Channel Length in Nanoporous Electric Double-Layer Capacitors on the Charge Transport Explored by Metal-Organic Framework Films
Cu3(HHTP)2 SURMOF synthesis-cycle series · Thin Film · BET surface area taken from ref. 22; density determined from the perfect MOF structure.
2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries
as-synthesised Cu-HBB-MOF black powder · Powder · 77 K N2 sorption; degassed at 80 C for 12 h under 10^-5 bar vacuum
2025 · In Situ Construction of Amide-Functionalized 2D Conjugated Metal-Organic Frameworks with Multiple Active Sites for High-Performance Potassium-Ion Batteries
as-synthesised Cu-Salphen-MOF black powder · Powder · 77 K N2 sorption; degassed at 80 C for 12 h under 10^-5 bar vacuum
2025 · Interconnected Lamellar 3D Semiconductive PCP for Rechargeable Aqueous Zinc Battery Cathodes
As-prepared VO-HHTP black powder · Powder · N2 probe gas at 77 K using BEL-mini X surface area analyzer.
2025 · Ligand engineering of Co-MOF-74 with hexaaminotriphenylene for enhanced oxygen reduction reaction in zinc-air batteries
Co-MOF-74-HATP powder · Powder · Nitrogen adsorption/desorption at 77 K used to infer pore filling by HATP; instrument Qantachrome Autosorb iQ.
2025 · Ligand-Insertion Strategy for Constructing 2D Conjugated Metal–Organic Framework with Large Pore Size for Electrochemical Analytics
As-prepared Cu3(HHTP)(DHBQ)1.5/1.53 black powder · Powder · N2 sorption recorded at 77 K; samples degassed under vacuum at 120 deg C for 12 h before measurement.
2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices
NiFe · Electrode · Surface area, pore size and pore volume from Table 2; type IV hysteresis noted.
2025 · Manganese oxide and urea-assisted engineering of nickel-iron compounds for high-performance battery-supercapacitor hybrid devices
NiFe-Mn3 · Electrode · Surface area, pore size and pore volume from Table 2; type IV hysteresis noted.
2025 · Metal-halide porous framework superlattices
PbI2@NU-1000 single crystals · Single Crystal · N2 adsorption at 77 K after acetone exchange and evacuation at 100 C for 10 h
2025 · Metal-halide porous framework superlattices
PbI2@PCN-606 single crystals · Single Crystal · N2 adsorption at 77 K after acetone exchange and evacuation at 100 C for 10 h
2025 · Metal-halide porous framework superlattices
PbI2@PCN-609 single crystals · Single Crystal · N2 adsorption at 77 K after acetone exchange and evacuation at 100 C for 10 h
2025 · Metal-halide porous framework superlattices
PbI2@PCN-700 single crystals · Single Crystal · N2 adsorption at 77 K after acetone exchange and evacuation at 100 C for 10 h
2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media
Co-HITP nanoparticles (Co-HITP NPs) · Powder · Isotherms at 77 K in main text; SI physical characterisation says 76.2 K instrument condition.
2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media
Cu-HITP nanoparticles · Powder · Isotherms at 77 K in main text; SI physical characterisation says 76.2 K instrument condition.
2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media
Fe-HITP nanoparticles/aggregate · Powder · Isotherms at 77 K in main text; SI physical characterisation says 76.2 K instrument condition.
2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media
Ni-HITP nanoparticles (Ni-HITP NPs) · Powder · Isotherms at 77 K in main text; SI physical characterisation says 76.2 K instrument condition.
2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media
Zn-HITP nanoparticles/aggregate · Powder · Isotherms at 77 K in main text; SI physical characterisation says 76.2 K instrument condition.
2025 · Mixed Ionic and Electronic Conductivity in a Tetrathiafulvalene-Phosphonate Metal-Organic Framework
Activated TTFTP-La MOF · Powder · Samples degassed at 150 °C under vacuum before CO2 at 273 K and N2 at 77 K measurements.
2025 · Mixed proton-electron conductivity in a dynamic 3D metal-organic framework
H12-Al2-(DOBDP)3 (_d) · Powder · Water sorption at 298 K; Al sample degassed at 150 deg C and 1e-1 Pa vacuum for 12 h before isotherm.
2025 · Mixed proton-electron conductivity in a dynamic 3D metal-organic framework
H12-Fe2-(DOBDP)3 (_d) · Powder · Water sorption at 298 K; Fe sample degassed at 90 deg C and 1e-1 Pa vacuum for 2 h before isotherm.
2025 · Modulating the redox states in a 3D conductive MOF for sweat ascorbic acid monitoring
I2@FeTHQ, 20 C 6 h · Powder · 77 K N2 sorption; FeTHQ vs I2@FeTHQ
2025 · Multifunctional covalent organic framework with extended π-d conjugated structure for lithium-sulfur batteries
as-synthesised Ni-COF powder/precipitate · Powder · Micromeritics ASAP 2460, 77 K; NLDFT pore-size distribution
2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study
UiO-66 powder, labelled U · Powder · 77 K adsorption; degassing time 6 h; type IV isotherm and pore-size distribution from Fig. 5/Table 1.
2025 · Nano UiO-66 and UiO-66-NH2 MOFs as Bifunctional Electrocatalysts for Water-Splitting: A Comparative Study
UiO-66-NH2 powder, labelled U-N · Powder · 77 K adsorption; degassing time 6 h; type IV isotherm and pore-size distribution from Fig. 5/Table 1.
2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand
Cu-HATC powders · Powder · Nitrogen sorption isotherm at 77 K; BET surface area and pore width distribution
2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand
Cu-HHTC powders · Powder · Surface area value listed for reported-method Cu-HHTC in comparison table
2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand
Ni-HATC bulk powders · Powder · CO2 sorption used to probe small intrinsic pockets; isotherm at 273 K
2025 · Nanoporous synthetic metal: A nickel MOF with an amino-functionalized macrocyclic ligand
Ni-HATC bulk powders · Powder · Nitrogen sorption isotherm at 77 K; BET surface area; NL-DFT pore width distribution
2025 · Piezoelectric-mediated two-dimensional copper-based metal–organic framework for synergistic sonodynamic and cuproptosis-driven tumor therapy
CM nanosheets · Nanosheet · Specific surface area and pore size measured by Autosorb iQ specific surface area analyser.
2025 · Promoting electromagnetic wave absorption for conductive metal-organic frameworks through crystal morphology controlling
Ni-TABQ cMOFs, jointly reported samples · Powder · N2 adsorption branches recorded at 77 K; samples degassed at 120 C for 8 h before BET measurements.
2025 · Proton Conductive Metal-Organic Framework Encapsulating Emissive Hexacyanidochromate(III) Ions for Ratiometric and Lifetime-Based Detection of Humidity and Temperature
dehydrated 1deh bulk powder · Powder · Methanol sorption/desorption isotherm for dehydrated 1deh at 25 C followed by water sorption for same sample.
2025 · Proton Conductive Metal-Organic Framework Encapsulating Emissive Hexacyanidochromate(III) Ions for Ratiometric and Lifetime-Based Detection of Humidity and Temperature
air-stable 1a bulk polycrystalline powder · Powder · Water vapour sorption/desorption isotherm at 25 C; p/p0/RH varied 0-0.9.
2025 · Proton Conductive Metal-Organic Framework Encapsulating Emissive Hexacyanidochromate(III) Ions for Ratiometric and Lifetime-Based Detection of Humidity and Temperature
air-dried 2a bulk powder · Powder · Water vapour sorption/desorption isotherm for 2a at 25 C.
2025 · Proton Conductive Metal-Organic Framework Encapsulating Emissive Hexacyanidochromate(III) Ions for Ratiometric and Lifetime-Based Detection of Humidity and Temperature
air-stable 1a bulk polycrystalline powder · Powder · Emission spectra/lifetime of 1a under 0-90% RH at 298 K, excitation 375 nm; DVS-coupled spectrofluorometer.
2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer
Ni-BAND powder/crystal-derived solid · Powder · N2 adsorption measurement used to assess porosity/surface area.
2025 · Proton-electron coupling and mixed conductivity in a hydrogen-bonded coordination polymer
Ni-BAND powder/crystal-derived solid · Powder · Sample dried, then exposed to controlled humidity at 298 K; water uptake calculated as (w - w0)/w0.
2025 · Radiation-Induced in Situ Construction of 2D Conductive Defect-Rich Metal-Organic Frameworks for High-Performance Supercapacitor
Cu-CAT-Rad · Powder · 77 K nitrogen sorption
2025 · Radiation-Induced in Situ Construction of 2D Conductive Defect-Rich Metal-Organic Frameworks for High-Performance Supercapacitor
Cu-CAT-Sol · Powder · 77 K nitrogen sorption
2025 · Rational Design of Conductive MOF-Based Diatomic Electrocatalysts for Selective Ammonia Synthesis
Cu99Ni1-DBCO · Powder · Mentioned in associated content; no numeric BET or pore values found in supplied text or first 30 rendered SI pages.
2025 · Self-amplifying bimetallic conductive metal-organic framework for sensitive label-free electrochemiluminescence detection of aflatoxin B1
ZnCoMOFs black precipitate/powder · Powder · SI Figure S1 narrative reports Type IV adsorption isotherm, H3 hysteresis loops, low-pressure uptake at P/P0 < 0.1, and pores broadly distributed over 2-184 nm.
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4000 · Single Crystal · 77 K after acetone exchange and 80 C activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4001 · Single Crystal · 195 K after scCO2 activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4002 · Single Crystal · 195 K after scCO2 activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4003 · Single Crystal · 77 K after acetone exchange and 80 C activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4003-C60-0.25 · Single Crystal · 77 K; partial C60 loading after 80 C activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4003-C60-0.36 · Single Crystal · 77 K; partial C60 loading after 80 C activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4003-C60-0.54 · Single Crystal · 77 K; partial C60 loading after 80 C activation
2025 · Solvent-Directed Assembly of π-Stacked 3D Metal-Organic Frameworks with Tunable Conductivity Enhanced by C60 Encapsulation
NU-4003-C60 · Single Crystal · 77 K; full C60 loading after 80 C activation
2025 · Stacking growth of ionically conductive MOF on biofabrics enables reliable NH3 sensor for hepatic encephalopathy diagnosis
Zn-TCPP-6 sensor on alginate fabric · Thin Film · Zn 2p, N 1s, C 1s and O 1s spectra of Zn-TCPP-6 before and after NH3 exposure.
2025 · Structural Control of Photoconductivity in a Flexible Titanium-Organic Framework
activated MUV-35 for N2 sorption · Powder
2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks
Co-CAT-W · Powder · Nitrogen sorption isotherms measured at 77 K.
2025 · Tailoring of electrocatalytic oxygen evolution reaction performance of 2D conductive Co-catecholate metal-organic frameworks
Co-CAT-WO · Powder · Nitrogen sorption isotherms measured at 77 K.
2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages
CuPc-O-Cu black powder · Powder · N2 isotherms measured at 77 K after degassing under vacuum at 100 deg C for 18 h.
2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages
CuPc-O-Ni black powder · Powder · N2 isotherms measured at 77 K after degassing under vacuum at 100 deg C for 18 h.
2025 · Tuning the Structure-Property Relationships of Metallophthalocyanine-Based Two-Dimensional Conductive Metal-Organic Frameworks with Different Metal Linkages
CuPc-O-Zn black powder · Powder · N2 isotherms measured at 77 K after degassing under vacuum at 100 deg C for 18 h.
2025 · Turning 2D MOFs into Mixed Ionic-Electronic Conductors via Side Chain Engineering
Ni-1EG pristine powder · Powder · activated cMOFs measured at 77 K
2025 · Turning 2D MOFs into Mixed Ionic-Electronic Conductors via Side Chain Engineering
Ni-2EG pristine powder · Powder · activated cMOFs measured at 77 K
2025 · Turning 2D MOFs into Mixed Ionic-Electronic Conductors via Side Chain Engineering
Ni-nBu pristine powder · Powder · activated cMOFs measured at 77 K
2025 · Two dimensional Conjugated Metal–Organic Frameworks with Multiple Redox-Active Sites towards High-Performance Sodium-Ion Battery
Cu-DDQP black powder · Powder · N2 sorption at 77 K after activation at 80 deg C for 12 h under vacuum (10^-5 bar).
2025 · Two dimensional Conjugated Metal–Organic Frameworks with Multiple Redox-Active Sites towards High-Performance Sodium-Ion Battery
Cu-TBPQ black powder · Powder · N2 sorption at 77 K after activation at 80 deg C for 12 h under vacuum (10^-5 bar).
2025 · Two dimensional Conjugated Metal–Organic Frameworks with Multiple Redox-Active Sites towards High-Performance Sodium-Ion Battery
Cu-TTPQ black powder · Powder · N2 sorption at 77 K after activation at 80 deg C for 12 h under vacuum (10^-5 bar).
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 black powder · Powder · N2 sorption isotherm measured at 77 K using microtracbel Belsorp Max.
2025 · Two-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Triple Active Centers as High-Performance Cathodes for Flexible Zinc Batteries
Pristine 1D Cu-TABQ powder · Powder · N2 adsorption/desorption measured using Micromeritics ASAP 2460.
2025 · Two-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Triple Active Centers as High-Performance Cathodes for Flexible Zinc Batteries
Pristine 2D Cu-TABQ powder · Powder · N2 adsorption/desorption measured using Micromeritics ASAP 2460; text reports 2D Cu-TABQ has larger specific surface area than 1D Cu-TABQ.
2025 · Ultrathin 2D metal-organic framework nanosheet arrays to boost the overall efficiency of water splitting
TIT-1 · Powder · Desolvated TIT-1 measured by N2 sorption at 77 K.
2025 · Uninterrupted π-d Conjugated Three-Dimensional Conductive Metal-Organic Framework
Ni3HBC powder degassed for nitrogen sorption · Powder · Micromeritics ASAP 2020 Plus; degassed at 100 deg C for 12 h under dynamic vacuum; N2 at 77 K; BET P/P0 range 2.85 x 10^-3 to 0.08.
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 · BET surface areas from N2 isothermal adsorption; 5% mass-loss decomposition temperature from TGA after activation.
2024 · A Triptycene-Based Layered/Flower-Like 2D Conductive Metal–Organic Framework with 3D Extension as an Electrode for Efficient Li Storage
Pristine M-DBH powders (M = Ni, Co, Mn) · Powder · N2 adsorption at 77 K; ASAP 2460 BET method.
2024 · Acid-Dependent Charge Transport in a Solution-Processed 2D Conductive Metal-Organic Framework
Cu3(HHTATP)2 nanorod powder · Powder · At least 70 mg sample activated at 120 C overnight; nitrogen adsorption at 77 K.
2024 · Aggregation-induced enhancement of pyrene-based metal-organic framework as a new electrochemiluminescence emitter for ultrasensitive detection of sulfadimethoxine
ZPM yellow precipitate powder · Powder · BET/porosity analysis reported in SI Fig. S1 and summarised in the main text.
2024 · Aliovalent Substitution Tunes Physical Properties in a Conductive Bis(dithiolene) Two-Dimensional Metal-Organic Framework
Ni3(THT)2 black powder · Powder · sample loaded in glovebox, degassed at 80 deg C for 3 days to <1 mTorr/min; N2 adsorption at 77 K
2024 · An Enzyme-Encapsulated Metal-Organic Frameworks Nanomesh Biosensor for Salivary Glucose Detection
CNT/GOx@ZIF-8 nanomesh · Powder · Pore distribution compared for ZIF-8, CNT/ZIF-8 and CNT/GOx@ZIF-8.
2024 · Conductive Metal-Organic Framework with Superior Redox Activity as a Stable High-Capacity Anode for High-Temperature K-Ion Batteries
bulk HAN-Cu-MOF powder · Powder · Micromeritics ASAP2460 at 77 K; type-II isotherm
2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction
Cu-doped Sr MOF powder · Powder · Micromeritics 3Flex; BET surface area and pore size distribution calculated from N2 sorption isotherms.
2024 · Copper-doped strontium metal-organic framework: Dual-function active material for supercapacitor and oxygen evolution reaction
Undoped Sr MOF powder · Powder · Micromeritics 3Flex; BET surface area and pore size distribution calculated from N2 sorption isotherms.
2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance
Cu-MOF single crystals · Single Crystal · Cu-MOF N2 isotherm and BJH inset in Fig. 5a; BET values in Table 2.
2024 · Cu/Fe-MOFs based on mixed ligands: Synthesis, crystal structure and electrocatalytic hydrogen evolution performance
Fe-MOF single crystals · Single Crystal · Fe-MOF N2 isotherm and BJH inset in Fig. 5b; BET values in Table 2.
2024 · De Novo Design and Facile Synthesis of Highly Crystalline 2D Conductive Metal-Organic Frameworks: A “Rotor-Stator” Strategy
Cu-DCB-MOF black powder · Powder · 77 K; samples degassed at 80 degC for 12 h under vacuum (1e-5 bar).
2024 · Detection of Ascorbic Acid by Two-Dimensional Conductive Metal-Organic Framework-Based Electrochemical Sensors
as-synthesised Cu3(HHTP)2 powder · Powder · N2 isotherms measured at 77 K; samples degassed under vacuum at 100 C for 12 h before testing.
2024 · Efficient oxygen evolution using conductive cobalt-based metal-organic framework
as-synthesised Co-BTB MOF powder · Powder · N2 sorption isotherm at 77 K; BET surface area calculated using Micromeritics ASAP 2020.
2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks
Bu-MOF as-synthesised powder · Powder · N2 isotherms measured at 77 K; samples heated to 90 C under 0.3 mtorr vacuum for 16 h before analysis.
2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks
Et-MOF as-synthesised powder · Powder · N2 isotherms measured at 77 K; samples heated to 90 C under 0.3 mtorr vacuum for 16 h before analysis.
2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks
H-MOF as-synthesised powder · Powder · N2 isotherms measured at 77 K; samples heated to 90 C under 0.3 mtorr vacuum for 16 h before analysis.
2024 · Electrochemical Capacitance Traces with Interlayer Spacing in Two-dimensional Conductive Metal–Organic Frameworks
Pent-MOF as-synthesised powder · Powder · N2 isotherms measured at 77 K; samples heated to 90 C under 0.3 mtorr vacuum for 16 h before analysis.
2024 · Electrosynthesis of a Nickel-Based Conductive Metal-Organic Framework with Controlled Morphology for Enhanced Capacitance
Solvothermal bulk Ni-HHTP powder/pellet · Pellet · BET surface area and pore size measured with Micromeritics ASAP 2020 PLUS; N2 sorption isotherm at 77 K.
2024 · Electrosynthesis of a Nickel-Based Conductive Metal-Organic Framework with Controlled Morphology for Enhanced Capacitance
Detached Ni-HHTP-Disc powder/pellet · Pellet · BET surface area and pore size measured with Micromeritics ASAP 2020 PLUS; N2 sorption isotherm at 77 K.
2024 · Electrosynthesis of a Nickel-Based Conductive Metal-Organic Framework with Controlled Morphology for Enhanced Capacitance
Detached Ni-HHTP-Flower powder/pellet · Pellet · BET surface area and pore size measured with Micromeritics ASAP 2020 PLUS; N2 sorption isotherm at 77 K.
2024 · Glucose sensing performance of bimetallic MOFs CoFe-ZIF/CC for enzyme-free saliva sensor applications
Co0.95Fe0.05-ZIF/CC composite · Nanosheet · Specific surface area and pore distribution measured by MicrotracBEL BELSORP MAX II / Micromeritics ASAP 2020 as reported.
2024 · High-Performance H2S Sensors to Detect SF6 Leakage
Co1.8Ni1.2(HITP)2 powder · Powder · N2 adsorption at 77 K after thermal treatment under dynamic vacuum at 90 C.
2024 · High-Performance H2S Sensors to Detect SF6 Leakage
Co3(HITP)2 powder · Powder · N2 adsorption at 77 K after thermal treatment under dynamic vacuum at 90 C.
2024 · High-Performance H2S Sensors to Detect SF6 Leakage
Ni3(HITP)2 powder · Powder · N2 adsorption at 77 K after thermal treatment under dynamic vacuum at 90 C.
2024 · High-performance hybrid supercapacitors enabled by CoTe@CoFeTe double-shelled nanocubes
CoTe@CoFeTe · Powder · Surface area and pore size of CoTe@CoFeTe and Co3O4@CoFe2O4 at 77 K.
2024 · High-Performance Ni3(HHTP)2 Film-Based Flexible Field-Effect Transistor Gas Sensors
Prepared Ni3(HHTP)2 material · Powder · N2 adsorption-desorption measured at 393 K using a Micromeritics ASAP 2460; isotherm and pore-width distribution shown in SI Figure S2 and summarised in main text.
2024 · Humidity-Mediated Dual Ionic-Electronic Conductivity Enables High Sensitivity in MOF Chemiresistors
Cu3HHTT2 powder · Powder · Samples degassed at 120 C overnight; N2 isotherm collected at 77 K using Micromeritics ASAP 2020.
2024 · Humidity-Mediated Dual Ionic-Electronic Conductivity Enables High Sensitivity in MOF Chemiresistors
Cu3HHTT2 powder · Powder · After N2 adsorption, analysing tube transferred to constant-temperature water bath and water isotherm collected at 25 C.
2024 · In Situ Growth of Conductive Metal-Organic Framework onto Cu2O for Highly Selective and Humidity-Independent Hydrogen Sulfide Detection in Food Quality Assessment
Cu2O@CuHHTP-3 powder · Powder · Specific surface areas of Cu2O and Cu2O@CuHHTP-n series.
2024 · In-situ growth of electrically conductive MOFs in wood cellulose scaffold for flexible, robust and hydrophobic membranes with improved electrochemical performance
delignified wood (DW) · Thin Film · Nitrogen sorption used to compare DW, TOW and 50%-NiCAT@TOW.
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 · Nitrogen sorption and pore-size distribution for 50%-NiCAT@TOW.
2024 · In-situ growth of electrically conductive MOFs in wood cellulose scaffold for flexible, robust and hydrophobic membranes with improved electrochemical performance
TOW membrane · Thin Film · Nitrogen sorption used to compare DW, TOW and 50%-NiCAT@TOW.
2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF
pristine Cu-EP powder · Powder · Argon adsorption/desorption isotherms at 77 K; full isotherm BET fitting range 0.05 to 0.30 P/P0; pre-evacuated 30 C 30 min then 60 C 8 h
2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF
Cu-EP-Cs-2 · Powder · Measured surface areas of Cs metalated samples; compared with hypothetical values based on pocket occupancy
2024 · Macrocyclic ligand-driven ion selectivity and high surface area in a 2D conductive MOF
Cu-HHTC powder · Powder · Control/literature Cu-HHTC surface area reported in comparison table
2024 · Metal-organic frameworks with fine-tuned interlayer spacing for microwave absorption
Zn3Cu1-HHTP powder/rod crystals · Powder · N2 adsorption-desorption at 273 K; porosity analyser ASAP 2460.
2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance
Cu-Try MOF powder (E) · Powder · N2 adsorption-desorption isotherms; BET surface area; BJH pore analysis
2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance
Cu-Co-Try MOF powder (P1) · Powder · N2 adsorption-desorption isotherms; BET surface area; BJH pore analysis
2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance
Cu-Zn-Try MOF powder (P2) · Powder · N2 adsorption-desorption isotherms; BET surface area; BJH pore analysis
2024 · Mixed metal conductive MOFs constructed from Trypan blue linked metal nodes: characteristic features and electrochemical performance
Cu-Er-Try MOF powder (P3) · Powder · N2 adsorption-desorption isotherms; BET surface area; BJH pore analysis
2024 · Molecular-Level Pore Tuning in 2D Conductive Metal-Organic Frameworks for Advanced Supercapacitor Performance
Cu3(HHTATP)2 dark powder · Powder · Activated under dynamic vacuum (4 umHg) at 120 C for 12 h; N2 adsorption at 77 K; NLDFT pore size from adsorption branch.
2024 · Morphology Control of Mixed Metallic Organic Framework for High-Performance Hybrid Supercapacitors
H2BDC-80 · Electrode · Whole conditioned electrodes: Benzoic acid-80, H2BDC-80 and H3BTC-100.
2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids
Q1 hydrothermal Cu-MOF powder · Powder · N2 adsorption-desorption measured at 77 K; supporting plot supplied as SI Fig. S1.
2024 · Morphology-driven electrochemical attributes of Cu-MOF: a high-performance anodic material for battery supercapacitor hybrids
Q2 sonochemical Cu-MOF powder · Powder · N2 adsorption-desorption measured at 77 K; supporting plot supplied as SI Fig. S1.
2024 · NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation
Cu-GDY (CG) · Powder · surface area, main pore size, and pore volume
2024 · NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation
pure NiCo-MOF (NC) · Powder · surface area, main pore size, and pore volume
2024 · NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation
NCCG-15 · Powder · surface area, main pore size, and pore volume
2024 · Novel electrochemical sensing strategy for ultrasensitive detection of tetracycline based on porphyrin/metal phthalocyanine-covalent organic framework
CuTAPc-TFPP-COF powder · Powder · Micromeritics ASAP2022 at liquid-nitrogen temperature; samples degassed at 573 K for 8 h before measurement.
2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors
near-ideal Ni3(HITP)2 crystallite powder · Powder · Quantachrome Autosorb IQ at 77 K; approx. 70 mg MOF activated under vacuum for 1 day at 90 deg C before measurement.
2024 · Photocatalytic Hydrogen Peroxide Production through Functionalized Semiconductive Metal-Organic Frameworks
EFB-MOF powder · Powder · N2 isotherm at 77 K; results reported for DPT-MOF, PA-MOF, and EFB-MOF.
2024 · Plasma-catalytic removal of toluene over bimetallic M/Mn-BTC catalysts in dielectric barrier discharge reactor
Ce/Mn-BTC · Powder · Specific surface area, pore volume and pore size from adsorption data
2024 · Plasma-catalytic removal of toluene over bimetallic M/Mn-BTC catalysts in dielectric barrier discharge reactor
Co/Mn-BTC / Co/Mn-BTC-1 · Powder · Specific surface area, pore volume and pore size from adsorption data
2024 · Plasma-catalytic removal of toluene over bimetallic M/Mn-BTC catalysts in dielectric barrier discharge reactor
Cu/Mn-BTC · Powder · Specific surface area, pore volume and pore size from adsorption data
2024 · Plasma-catalytic removal of toluene over bimetallic M/Mn-BTC catalysts in dielectric barrier discharge reactor
Fe/Mn-BTC · Powder · Specific surface area, pore volume and pore size from adsorption data
2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors
NCS · Powder · Nitrogen adsorption-desorption isotherms; type IV isotherm and H3 hysteresis.
2024 · Rational design of sulfur vacancy-rich NiCo2S4/C nanostructure for high-performance hybrid supercapacitors
NCSC · Powder · Nitrogen adsorption-desorption isotherms; type IV isotherm and H3 hysteresis.
2024 · Reaction-Type-Dependent Behavior of Redox-Hopping in MOFs─Does Charge Transport Have a Preferred Direction?
NU-1000 particles · Powder · Surface-area measurements cited as part of structural confirmation.
2024 · Redox-active conductive metal-organic framework with high lithium capacities at low temperatures
SKIER-5 cyan solid powder · Powder · N2 adsorption/desorption at 77 K; BET surface area reported
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 · N2 sorption at 77 K; BET surface area, pore volume and average pore size.
2024 · Revealing the effect of cobalt content and ligand exchange in the bimetallic Ni–Co MOF for stable supercapacitors with high energy density
KNiCoPO4 powder · Powder · N2 adsorption-desorption at 77 K
2024 · Revealing the effect of cobalt content and ligand exchange in the bimetallic Ni–Co MOF for stable supercapacitors with high energy density
Ni-M/NiCo-M/Co-M powder comparison series · Powder · N2 physisorption at 77 K
2024 · Single-Atom Catalysts in Conductive Metal-Organic Frameworks: Enabling Reversible Gas Sensing at Room Temperature
Pd1-cMOF powder · Powder · Porosity comparison of pristine cMOF and Pd1-cMOF.
2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units
Activated Ni3(HITP)2 for N2 sorption · Powder · Micromeritics ASAP 2020 HD 88 physisorption analyser; N2 at 77 K after activation.
2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical Performance
Ni-HHTP@Co(OH)2 · Electrode · BET surface area and pore size distribution at 77 K
2024 · Superior Charge Transport in Ni-Diamine Conductive MOFs
Pristine Cu3(HITT)2 black powder · Powder · Micromeritics ASAP 2020; liquid nitrogen bath at 77 K; degassed at 55 deg C overnight for Figure S22.
2024 · Superior Charge Transport in Ni-Diamine Conductive MOFs
Pristine Ni3(HITT)2 black powder · Powder · Micromeritics ASAP 2020; liquid nitrogen bath at 77 K; degassed at 120 deg C overnight for Figure S21.
2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework
Co-MOF powder · Powder · Nitrogen adsorption-desorption on Micromeritics ASAP 2020 HD 88; XRF for Cu/Co contents
2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework
CoCu-MOF powder, Co:Cu = 6:1 feed · Powder · Nitrogen adsorption-desorption on Micromeritics ASAP 2020 HD 88; XRF for Cu/Co contents
2024 · Synergistic Enhancement of Supercapacitors with Cobalt–Copper Bimetal–Organic Framework
Cu-MOF powder · Powder · Nitrogen adsorption-desorption on Micromeritics ASAP 2020 HD 88; XRF for Cu/Co contents
2024 · Synthesis of millimeter-scale ZIF-8 single crystals and their reversible crystal structure changes
SC-ZIF-8 sample activated for N2 adsorption · Single Crystal · Measured at 77 K on Quantachrome Autosorb gas sorption system after 150 degC activation for 24 h.
2024 · Synthesis of Stable 2D Conductive Lanthanide Organic Frameworks (Lu-HHTP) for High-Performance Humidity Sensors
Lu-HHTP black powder · Powder · N2 adsorption-desorption isotherms at 77 K; samples degassed at 120 deg C under vacuum for 10 h
2024 · Toward Enhancing Performance of Electromagnetic Wave Absorption for Conductive Metal-Organic Frameworks: Nanostructure Engineering or Crystal Morphology Controlling
A-Cu-HHTP nanosheet powder · Nanosheet · Adsorption branches recorded at 77 K after degassing at 120 C for 8 h.
2024 · Toward Enhancing Performance of Electromagnetic Wave Absorption for Conductive Metal-Organic Frameworks: Nanostructure Engineering or Crystal Morphology Controlling
B-Cu-HHTP nanorod powder · Powder · Adsorption branches recorded at 77 K after degassing at 120 C for 8 h.
2024 · Toward Enhancing Performance of Electromagnetic Wave Absorption for Conductive Metal-Organic Frameworks: Nanostructure Engineering or Crystal Morphology Controlling
C-Cu-HHTP nanoball powder · Powder · Adsorption branches recorded at 77 K after degassing at 120 C for 8 h.
2024 · Tri-Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours
All synthesised MOF-74 analogues · Powder · Activated samples measured on Micromeritics 3Flex; 50-150 mg sample; liquid N2 bath at 77 K.
2024 · Triazacoronene-Based 2D Conductive Metal–Organic Framework for High-Capacity Lithium Storage
as-synthesised Cu-TAC powder · Powder · Micromeritics ASAP 2460 at liquid nitrogen temperature.
2024 · Tunable Charge Transport and Spin Dynamics in Two-Dimensional Conjugated Metal-Organic Frameworks
Ni3(HATI_H)2 black powder · Powder · Activated powder; N2 sorption at 77 K.
2024 · Tunable Charge Transport and Spin Dynamics in Two-Dimensional Conjugated Metal-Organic Frameworks
Ni3(HATI_iPr)2 black powder · Powder · Activated powder; N2 sorption at 77 K.
2024 · Tunable Charge Transport and Spin Dynamics in Two-Dimensional Conjugated Metal-Organic Frameworks
Ni3(HATI_nPr)2 black powder · Powder · Activated powder; N2 sorption at 77 K.
2024 · Tunable Charge Transport and Spin Dynamics in Two-Dimensional Conjugated Metal-Organic Frameworks
Ni3(HATI_vPr)2 black powder · Powder · Activated powder; N2 sorption at 77 K.
2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance
Activated Co-DHHBTN for N2 sorption · Powder · Micromeritics ASAP 2020 HD88; N2 at 77 K after water activation and vacuum drying.
2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance
Activated Cu-DHHBTN for N2 sorption · Powder · Micromeritics ASAP 2020 HD88; N2 at 77 K after water activation and vacuum drying.
2024 · Two-Dimensional Conjugated Metal–Organic Frameworks with a Ring-in-Ring Topology and High Electrical Conductance
Activated Ni-DHHBTN for N2 sorption · Powder · Micromeritics ASAP 2020 HD88; N2 at 77 K after water activation and vacuum drying.
2024 · Unleashing the room temperature boronization: Blooming of Ni-ZIF nanobuds for efficient photo/electro catalysis of water
24-BNZ powder / 24 h boronized Ni-ZIF · Powder · 24-BNZ porosity from SI Figure S6 and text-reported surface area, pore diameter and pore volume.
2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance
as-synthesised Ni-BPE crystals · Single Crystal · Micromeritics ASAP 2460; room temperature figure caption; BET SSA and single-point total pore volume
2024 · Upgrading Structural Conjugation in Three-Dimensional Ni-Based Metal-Organic Frameworks for Promoting Electrical Conductivity and Specific Capacitance
as-synthesised Ni-BPY crystals · Single Crystal · Micromeritics ASAP 2460; room temperature figure caption; BET SSA and single-point total pore volume
2024 · ZnS/MnO2 metal organic framework based conductive hydrogel for highly selective and sensitive detection of glutathione in serum samples
2 wt% ZnS/MnO2-MOF hydrogel electrode · Electrode · Autosorb-1 Quantachrome Instruments; BET surface area and pore-volume analysis from N2 isotherms.
2023 · 2D conjugated metal-organic framework as a proton-electron dual conductor
As-synthesised Zn-HHTP-H2O powder · Powder · N2 sorption at 77 K; BET sample activated by evacuation and heating to 80 deg C for 2 h.
2023 · 2D conjugated metal-organic framework as a proton-electron dual conductor
Zn-HHTP-urea powder · Powder · N2 sorption comparison of Zn-HHTP-H2O and Zn-HHTP-urea.
2023 · A Conductive 2D Conjugated Tetrathia[8]circulene-Based Nickel Metal–Organic Framework for Energy Storage
Ni-TTC activated at 120 C · Powder · N2 isotherm at 77 K after activation at 120 C; Micromeritics ASAP 2020HD88
2023 · A Humidity-Induced Large Electronic Conductivity Change of 107 on a Metal-Organic Framework for Highly Sensitive Water Detection
(NH2)2-MIL-125 powder · Powder · N2 sorption measurements at 77 K
2023 · A Humidity-Induced Large Electronic Conductivity Change of 107 on a Metal-Organic Framework for Highly Sensitive Water Detection
H2SO4@(NH2)2-MIL-125 powder · Powder · N2 sorption measurements at 77 K after H2SO4 loading
2023 · A Humidity-Induced Large Electronic Conductivity Change of 107 on a Metal-Organic Framework for Highly Sensitive Water Detection
H2SO4@(NH2)2-MIL-125 powder · Powder · Water sorption isotherm of H2SO4@(NH2)2-MIL-125 measured at 298 K
2023 · A Pyrazine-Based 2D Conductive Metal-Organic Framework for Efficient Lithium Storage†
As-synthesised TPQG-Cu-MOF black powder · Powder · N2 sorption at 77 K; SI reports degassing at 80 C for 10 h under vacuum (10-5 bar).
2023 · A tribenzocoronene-based 2D conductive metal-organic framework for efficient energy storage
as-prepared Cu-TBC black powder · Powder · 77 K N2 sorption; sample degassed at 80 degC for 10 h under 10^-5 bar; BET and NLDFT pore-size distribution
2023 · A Triptycene-Based 2D MOF with Vertically Extended Structure for Improving the Electrocatalytic Performance of CO2 to Methane
2D-vc-MOF(Cu) activated for gas adsorption · Powder · Activated powder measured on Quantachrome Autosorb-iQ; BET evaluated over P/P0 = 0.05-0.40.
2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport
UIO-66 powder · Powder · N2 sorption/desorption at 77 K.
2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport
UIO-SOH nanoparticles · Powder · N2 sorption/desorption at 77 K.
2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport
UIO-SOLi nanoparticles · Powder · N2 sorption/desorption at 77 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Por(Co)-MOF · Powder · BET surface area from N2 physisorption at 77 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-MOF · Powder · BET surface area from N2 physisorption at 77 K.
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 · BET surface area from N2 physisorption at 77 K.
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 · BET surface area from N2 physisorption at 77 K.
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 · BET surface area from N2 physisorption at 77 K.
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 · BET surface area from N2 physisorption at 77 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Por(Co)-MOF · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-MOF · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-Por(Co)-MOF(1:1) · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-Por(Co)-MOF(2:1) · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-Por(Co)-MOF(5:1) · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
2023 · Boosting electrocatalytic CO2 reduction reaction over viologen-functionalized metal-organic frameworks by enhancement of electron-transfer capacity
Vg-Por(Co)-MOF(9:1) · Powder · CO2 adsorption capacity measured at 298 K according to main text; SI caption states 293 K.
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 · CAD Mpore3 BET surface area analyser
2023 · CO2-Sensitive Porous Magnet: Antiferromagnet Creation from a Paramagnetic Charge-Transfer Layered Metal-Organic Framework
Activated crystals of compound 1 · Single Crystal · N2, CO2, and O2 sorption; CO2 isotherms/isobars from 195-300 K and 1-100 kPa; sample degassed at 353 K for 12 h.
2023 · Conductive Lanthanide Metal-Organic Frameworks with Exceptionally High Stability
as-synthesised Gd4-MOF single crystals · Single Crystal · 77 K; as synthesised and after pH 1 or pH 12 treatment for 12 h
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 · ASAP2460 pore structure analysis; type-II isotherm with H3 hysteresis for MIL-47 leaf.
2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes
MWM-1 (Co/2Ni) powder/crystals · Powder · liquid nitrogen temperature (-196 C), Micromeritics ASAP 2020 M
2023 · Conductive metal-organic frameworks with wheel-shaped metallomacrocycle subunits as high-performance supercapacitor electrodes
MWM-1 (Co) powder/crystals · Powder · liquid nitrogen temperature (-196 C), Micromeritics ASAP 2020 M
2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction
c-HBC-12O-Cu black powder · Powder · N2 sorption at 77 K; main text states activated at 358 K under vacuum (10 Pa) for 12 h before measurement; SI method states degassed at room temperature for 10 h under 1e-5 bar.
2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction
c-HBC-6O-Cu black powder · Powder · N2 sorption at 77 K; main text states activated at 358 K under vacuum (10 Pa) for 12 h before measurement; SI method states degassed at room temperature for 10 h under 1e-5 bar.
2023 · Conjugated Nonplanar Copper-Catecholate Conductive Metal-Organic Frameworks via Contorted Hexabenzocoronene Ligands for Electrical Conduction
c-HBC-8O-Cu black powder · Powder · N2 sorption at 77 K; main text states activated at 358 K under vacuum (10 Pa) for 12 h before measurement; SI method states degassed at room temperature for 10 h under 1e-5 bar.
2023 · Controllable Construction of Two-Dimensional Conductive M3(HHTP)2 Nanorods for Electrochemical Sensing of Malachite Green in Fish
Cu/Ni/Co M3(HHTP)2 nanorod powder series · Powder · BET surface areas and pore sizes for Cu3(HHTP)2, Ni3(HHTP)2 and Co3(HHTP)2 nanorods.
2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides
Ti-dobdc pristine · Pellet · Activated at 373 K under vacuum (10^-2 Pa) for 4 h; H2O vapour sorption measured at 298 K.
2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides
Ti-dobdc-LiBr (MOF:LiBr = 1:1) · Pellet · Activated at 373 K under vacuum (10^-2 Pa) for 4 h; H2O vapour sorption measured at 298 K.
2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides
Ti-dobdc-LiCl (MOF:LiCl = 1:1) · Pellet · Activated at 373 K under vacuum (10^-2 Pa) for 4 h; H2O vapour sorption measured at 298 K.
2023 · Cooperative Proton and Li-ion Conduction in a 2D-Layered MOF via Mechanical Insertion of Lithium Halides
Ti-dobdc-LiI (MOF:LiI = 1:1) · Pellet · Activated at 373 K under vacuum (10^-2 Pa) for 4 h; H2O vapour sorption measured at 298 K.
2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media
As-synthesised Cu3(HITP)2 powder · Powder · N2 adsorption/desorption isotherms and pore-size distribution from Fig. S4.
2023 · Copper-cobalt bimetallic conductive metal–organic frameworks as bifunctional oxygen electrocatalyst in alkaline and neutral media
As-synthesised CuCo-HITP powder · Powder · N2 adsorption/desorption isotherms and pore-size distribution from Fig. S4.
2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers
As-synthesised crystals/powder of 1 · Powder · N2 sorption at 77 K with activated samples.
2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers
As-synthesised crystals/powder of 2 · Powder · N2 sorption at 77 K with activated samples.
2023 · Correlation in Structural Architecture toward Fabrication of Schottky Device with a Series of Pyrazine Appended Coordination Polymers
As-synthesised crystals/powder of 3 · Powder · N2 sorption at 77 K with activated samples.
2023 · Dimensional Control of Highly Anisotropic and Transparent Conductive Coordination Polymers for Solution-Processable Large-Scale 2D Sheets
1D CuCl-TU polymer nanowire · Powder · Adsorption/desorption and Horvath-Kawazoe pore size distribution for 1D CuCl-TU.
2023 · Dimensional Control of Highly Anisotropic and Transparent Conductive Coordination Polymers for Solution-Processable Large-Scale 2D Sheets
3D CuCl-TU polymer nanostructure · Powder · Adsorption/desorption and Horvath-Kawazoe pore size distribution for 3D CuCl-TU.
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Co-CoOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Co-CuOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Co-NiOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Cu-CoOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Cu-CuOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Cu-NiOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Ni-CoOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Ni-CuOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Effects of Transition Metals on Metal-Octaaminophthalocyanine-Based 2D Metal-Organic Frameworks
Ni-NiOAPc powder and cold-pressed pellet · Powder · Table S5 property summary for each pristine MOF
2023 · Electrically conductive Pt-MOFs for acidic oxygen reduction: Optimized performance via altering conjugated ligands
Pt3(C12N6O6)2 MOF black powder · Powder · Measured at 77.15 K; samples outgassed at 150 C for 6 h under 10^-6 Torr.
2023 · Electrically Conductive π-Intercalated Graphitic Metal-Organic Framework Containing Alternate π-Donor/Acceptor Stacks
iGMOF1 black powder · Powder · Activated iGMOF1 and Cu3(HATP)2 measured at 77 K using Quantachrome Autosorb iQ and automated Sieverts apparatus.
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-A powder · Powder · Fresh Co-MOF-A BET specific surface area
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-B powder · Powder · Fresh Co-MOF-B BET specific surface area
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-C powder · Nanosheet · Fresh Co-MOF-C BET specific surface area
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-A powder · Powder · Post-test Co-MOF-A BET surface area
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-B powder · Powder · Post-test Co-MOF-B BET surface area
2023 · Enhanced cobalt MOF electrocatalyst for oxygen evolution reaction via morphology regulation
Co-MOF-C electrode after OER testing · Electrode · Post-test Co-MOF-C BET surface area
2023 · Exceptionally high charge mobility in phthalocyanine-based poly(benzimidazobenzophenanthroline)-ladder-type two-dimensional conjugated polymers
2DCP-CuPc powder · Powder · Nitrogen physisorption at 77 K using a Micromeritics TriStar II Plus.
2023 · Exceptionally high charge mobility in phthalocyanine-based poly(benzimidazobenzophenanthroline)-ladder-type two-dimensional conjugated polymers
2DCP-NiPc powder · Powder · Nitrogen physisorption at 77 K using a Micromeritics TriStar II Plus.
2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers
as-synthesised 1D-CuTABQ powder · Powder · BELSORP-max instrument; BET surface area and pore volume reported
2023 · Framework Dimensional Control Boosting Charge Storage in Conjugated Coordination Polymers
as-synthesised 2D-CuTABQ powder · Powder · BELSORP-max instrument; BET surface area and pore volume reported
2023 · From non-conductive MOF to proton-conducting metal-HOFs: a new class of reversible transformations induced by solvent-free mechanochemistry
Mn-HOF-FA powder · Powder · CO2 adsorption measurement at 195 K for Mn-HOF-MA and Mn-HOF-FA
2023 · From non-conductive MOF to proton-conducting metal-HOFs: a new class of reversible transformations induced by solvent-free mechanochemistry
Mn-HOF-FA powder · Powder · N2 adsorption measurement at 77 K for Mn-HOF-MA and Mn-HOF-FA
2023 · From non-conductive MOF to proton-conducting metal-HOFs: a new class of reversible transformations induced by solvent-free mechanochemistry
Mn-HOF-FA powder · Powder · H2O adsorption at 293 K for JUK-1, JUK-2, Mn-HOF-FA and Mn-HOF-MA
2023 · Hierarchical conductive metal-organic framework films enabling efficient interfacial mass transfer
PcCu-Zn-H film on Si/SiO2 · Thin Film · BET measurements for PcCu-Zn and Co-HHTP hollow and bulk films.
2023 · Hierarchical conductive metal-organic framework films enabling efficient interfacial mass transfer
Zn-HHTP-H film on Si/SiO2 · Thin Film · Physisorption at -196 degC / 77 K; samples degassed in vacuo at 100 degC for at least 8 h.
2023 · Iodine uptake enhanced electrical conductivity by a metal-organic framework bearing nanotube array of π-stacked columns
desolvated 1 bulk sample · Powder · N2 isotherm at 77 K and CO2 isotherm at 195 K for desolvated 1
2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries
IL0.5@MOF (0.5:1) · Pellet · N2 physisorption at 77 K after vacuum at 100 deg C for 12 h; approximately 100 mg sample; Quantachrome Autosorb-iQ-MP
2023 · Ionic Liquid-Laden Zn-MOF-74-Based Solid-State Electrolyte for Sodium Batteries
Zn-MOF-74 powder · Powder · N2 physisorption at 77 K after vacuum at 100 deg C for 12 h; approximately 100 mg sample; Quantachrome Autosorb-iQ-MP
2023 · Isonicotinic acid-based copper-MOF: An exotic redox propertied electrode material for high energy asymmetric supercapacitor
Sky blue Cu-MOF crystals · Powder · BET specific surface area and pore-size distribution of synthesised Cu-MOF; nitrogen adsorption-desorption shown in Fig. S1.
2023 · Ligand-Oxidation-Based Anodic Synthesis of Oriented Films of Conductive M-Catecholate Metal-Organic Frameworks with Controllable Thickness
Activated Cu3(HHTP)2 film pieces on Au for gas sorption · Thin Film · Activated Au-supported Cu3(HHTP)2 film pieces measured at 77 K; BET fitted over P/P0 = 0.005-0.065.
2023 · Linker-Based Bandgap Tuning in Conductive MOF Solid Solutions
Cu3(TATHB)2 / Cu-TATHB (x = 0) · Pellet · N2 sorption at 77 K after evacuation to 50 umHg, heating to 80 deg C, and holding 2 h.
2023 · Metal-Organic Framework Glass Catalysts from Melting Glass-Forming Cobalt-Based Zeolitic Imidazolate Framework for Boosting Photoelectrochemical Water Oxidation
10% Co-agZIF-62 glass · Powder · Measured at 298 K
2023 · Microscopic Origin of Electrochemical Capacitance in Metal-Organic Frameworks
Composite Cu3(HHTP)2 freestanding electrode film · Electrode · Composite electrode film analysed by N2 sorption; corrected Cu3(HHTP)2 BET area derived by subtracting acetylene black/PTFE contributions.
2023 · Microscopic Origin of Electrochemical Capacitance in Metal-Organic Frameworks
Cu3(HHTP)2 powder · Powder · Anton Parr Autosorb iQ-XR; ex situ degassing at 80 deg C for 24 h; isotherms over 24-30 h; AsiQwin analysis.
2023 · Modular conductive MOF-gated field-effect biosensor for sensitive discrimination on the small molecular scale
TCP sensor: Cu2TCPP thin film on SnO2/ITO extended gate, 10 growth cycles · Electrode · Porosity measurement of Cu2TCPP film.
2023 · Modular conductive MOF-gated field-effect biosensor for sensitive discrimination on the small molecular scale
HTP sensor: Cu3HHTP2 thin film on SnO2/ITO extended gate, 10 growth cycles · Electrode · Porosity measurement of Cu3HHTP2 film.
2023 · MOF-Assimilated High-Sensitive Organic Field-Effect Transistors for Rapid Detection of a Chemical Warfare Agent
activated CPO-27-Ni for N2 sorption · Powder · N2 sorption on activated CPO-27-Ni using a Micromeritics 3-Flex Surface Characterization Analyzer with micropore ports at 77 K.
2023 · Near IR Bandgap Semiconducting 2D Conjugated Metal-Organic Framework with Rhombic Lattice and High Mobility
Cu2(OHPTP) bulk powder · Powder · Nitrogen adsorption measurements at 77 K on QuadraSorb low-pressure system.
2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks
Bi(HHTP) 12 h nanobelts · Powder · Bi(HHTP) 12 h soaked in 3 M KOH; XRD, N2 adsorption, and FT-IR compared before/after soaking.
2023 · Negative electrodes for supercapacitors with good performance using conductive bismuth-catecholate metal-organic frameworks
Bi(HHTP) 4/8/12/20 h nanobelt powder series · Powder · Surface areas and pore-size distributions measured for as-made Bi(HHTP) 4, 8, 12 and 20 h nanobelts.
2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework
Cu-H4EBTC powder · Powder · Nitrogen sorption isotherm and calculated pore-size distribution for Cu-H4EBTC control.
2023 · Novel aptasensing strategy for efficiently quantitative analyzing Staphylococcus aureus based on defective copper-based metal–organic framework
nattier blue ML-Cu2O@Cu-MOF powder · Powder · Nitrogen sorption isotherm and calculated pore-size distribution for ML-Cu2O@Cu-MOF.
2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries
Cu-BTA-H powder · Powder · BET surface area and pore-size distribution for Cu-BTA-H powder.
2023 · One-Dimensional π-d Conjugated Conductive Metal-Organic Framework with Dual Redox-Active Sites for High-Capacity and Durable Cathodes for Aqueous Zinc Batteries
Ni-BTA-H powder · Powder · BET surface area and pore-size distribution for Ni-BTA-H powder.
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 powder activated at 60 C · Powder · Micromeritics 3Flex; N2 at 77 K; degassed under reduced pressure for 20 h at RT-120 C, with 60 C used for electrode-relevant activation.
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 powder activated at 60 C · Powder · Micromeritics 3Flex; N2 at 77 K; degassed under reduced pressure for 20 h at RT-120 C, with 60 C used for electrode-relevant activation.
2023 · Oxidatively Doped Tetrathiafulvalene-Based Metal-Organic Frameworks for High Specific Energy of Supercapatteries
1 crystals · Single Crystal · 77 K N2 adsorption; BET surface area; pore-size distributions calculated from desorption branch using NLDFT equilibrium model.
2023 · Oxidatively Doped Tetrathiafulvalene-Based Metal-Organic Frameworks for High Specific Energy of Supercapatteries
1-ox · Single Crystal · 77 K N2 adsorption; BET surface area; pore-size distributions calculated from desorption branch using NLDFT equilibrium model.
2023 · Partial selenium surface modulation of metal organic framework assisted cobalt sulfide hollow spheres for high performance bifunctional oxygen electrocatalysis and rechargeable zinc-air batteries
Se-doped MOF CoS2 hollow spheres · Powder · Micromeritics 3Flex 5.01 N2 physisorption; type IV isotherms and pore-size distribution.
2023 · Piperazine-linked metal covalent organic framework-coated fibers for efficient electro-enhanced solid-phase microextraction of chlorophenols
CuPc-MCOF powder · Powder · ASAP 2460; N2 sorption at 77 K after vacuum degassing at 120 degC for 8 h.
2023 · Redox-Active Mixed-Linker Metal–Organic Frameworks with Switchable Semiconductive Characteristics for Tailorable Chemiresistive Sensing
Mn2[TTF]x[NiS4]1-x powder series · Powder · N2 sorption at 77 K; Mn2[TTF] degassed at 200 C for 24 h, other samples degassed at 180 C for 24 h under vacuum.
2023 · Redox-Active Two-Dimensional Tetrathiafulvalene-Copper Metal-Organic Framework with Boosted Electrochemical Performances for Supercapatteries
Maroon single crystals of 1 · Single Crystal · N2 isotherm measured at 77 K with Quantachrome Autosorb-IQ; BET, BJH and HK methods described.
2023 · Sensing interface based on electrodeposited Cu-BTC microporous film for electrochemical detection of the painkiller paracetamol
Cu-BTC/GCE, optimised 5 min film · Electrode · Authors discuss expected microporous film based on no template and electrodeposited MOF thin-film precedents.
2023 · Stabilizing Redox-Active Hexaazatriphenylene in a 2D Conductive Metal–Organic Framework for Improved Lithium Storage Performance
Cu-HATN powder · Powder · N2 sorption at 77 K using Micromeritics ASAP 2460.
2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids
As-synthesised Cu-MOF crystals/powder · Powder · N2 adsorption/desorption at 298 K.
2023 · Strategies to enhance electrochemical performance of isoreticular 2d conjugated metal correlated organic frameworks via transition metals intercalation for battery-supercapacitor hybrids
As-synthesised Ni-MOF crystals/powder · Powder · N2 adsorption/desorption at 298 K.
2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors
MSC-850 C-sublimed sulfur / MSC · Powder · Samples degassed at 200 C for 10 h before N2 sorption.
2023 · Super Proton Conductivity Through Control of Hydrogen-Bonding Networks in Flexible Metal–Organic Frameworks
MIL-88B · Powder · N2 sorption at 77 K using Micromeritics Tristar II 3020; BET surface area and pore-size distribution.
2023 · Super Proton Conductivity Through Control of Hydrogen-Bonding Networks in Flexible Metal–Organic Frameworks
Im@MIL-88B-LB · Powder · Water vapour adsorption/desorption at 298 K for pristine and imidazole-loaded samples.
2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries
Ni-mba-K product · Powder · Micromeritics ASAP 2020M, liquid nitrogen temperature (-196 deg C), BET equation
2023 · Synthesis, structure, and lithium storage performance of non-conductive metal–organic frameworks for high-performance lithium-ion batteries
Ni-mba-Na black fibrous product · Powder · Micromeritics ASAP 2020M, liquid nitrogen temperature (-196 deg C), BET equation
2023 · The rise of 2D conductive metal-organic framework: Cu3(HHTP)2 d-π MOF for integrated battery-supercapacitor hybrids
As-synthesised Cu3(HHTP)2 dark-blue crystalline solid · Powder · Gas adsorption using N2; main methods state N2 at 77 K, results text and SI state BET/pore-size assessment at 298 K.
2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties
HKUST-1 nanoparticles · Powder · Degassed MOFs at 150 C for 12 h before measurement.
2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties
Mg-MOF-74 hollow nanoparticle aggregates · Powder · Degassed MOFs at 150 C for 12 h before measurement.
2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties
MOF-5 nanoparticles · Powder · Degassed MOFs at 150 C for 12 h before measurement.
2023 · Toward High-Performance Metal–Organic-Framework-Based Quasi-Solid-State Electrolytes: Tunable Structures and Electrochemical Properties
Zn-MOF-74 activated nanoparticles · Powder · Degassed MOFs at 150 C for 12 h before measurement.
2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors
Methanol-activated DUT-67(Hf) powder · Powder · N2 adsorption/desorption at 77 K; activated powder
2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors
Methanol-activated DUT-67(Zr) powder · Powder · N2 adsorption/desorption at 77 K; activated powder
2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors
Methanol-activated DUT-67(Hf) powder · Powder · H2O vapour at 25 deg C, P/P0 0.95; NH3 vapour at 35 deg C, P/P0 0.99
2023 · Two Dual-Function Zr/Hf-MOFs as High-Performance Proton Conductors and Amines Impedance Sensors
Methanol-activated DUT-67(Zr) powder · Powder · H2O vapour at 25 deg C, P/P0 0.95; NH3 vapour at 35 deg C, P/P0 0.99
2023 · Two-Dimensional Conductive Metal-Organic Framework Reinforced Spinterface in Organic Spin Valves
PcCu-Cu MOF powder · Powder · PcCu-Cu powder BET measurement; N2 adsorption/desorption at 77 K.
2023 · Two-Dimensional Conductive Metal-Organic Framework Reinforced Spinterface in Organic Spin Valves
PcH2-Cu MOF powder · Powder · PcH2-Cu powder BET measurement; N2 adsorption/desorption at 77 K.
2023 · Two-Dimensional Conductive Metal-Organic Framework Reinforced Spinterface in Organic Spin Valves
PcNi-Cu MOF powder · Powder · PcNi-Cu powder BET measurement; N2 adsorption/desorption at 77 K.
2023 · Two-Dimensional Conductive Metal-Organic Framework Reinforced Spinterface in Organic Spin Valves
PcM-Cu MOF powder series (M = Ni, Cu, H2) · Powder · N2 adsorption/desorption isotherms at 77 K for PcNi-Cu, PcCu-Cu, and PcH2-Cu powders.
2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing
HIOTP-Cu black powder · Powder · Activated at 120 deg C for 12 h under vacuum (10-5 bar) before gas sorption.
2023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing
HIOTP-Ni black powder · Powder · Activated at 120 deg C for 12 h under vacuum (10-5 bar) before gas sorption.
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 · N2 adsorption/desorption measured at 77 K.
2023 · Wavy Two-Dimensional Conjugated Metal-Organic Framework with Metallic Charge Transport
Cu3(HFcHBC)2 powder from collected films · Powder · Powder degassed at 90 C for 24 h under 10^-5 bar vacuum; measured at 77 K/77.3 K over P/P0 0-0.99.
2023 · Zeolites as a Class of Semiconductors for High-Performance Electrically Transduced Sensing
Na-MTW (22) · Powder · Na-MTW series
2023 · Zeolites as a Class of Semiconductors for High-Performance Electrically Transduced Sensing
Na-ZSM-5 (9.8) · Powder · Micromeritics ASAP-2020; Na-ZSM-5 series
2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan
Co-Ni-MOFs-1% powder · Powder · N2 sorption at 77 K; samples activated under vacuum at 150 C for 4 h.
2022 · 3D Co-doped Ni-based conductive MOFs modified electrochemical sensor for highly sensitive detection of L-tryptophan
Ni-MOFs powder · Powder · N2 sorption at 77 K; samples activated under vacuum at 150 C for 4 h.
2022 · A 2D copper-imidazolate framework without thermal treatment as an efficient ORR electrocatalyst for Zn-air batteries
as-synthesised 2DCIF nanosheet powder · Nanosheet · Powder evacuated at 150 C for 16 h before measurement
2022 · A Monocrystalline Coordination Polymer with Multiple Redox Centers as a High-Performance Cathode for Lithium-Ion Batteries
as-synthesised CuCA nanosheet powder · Nanosheet · Specific surface area and pore-size distribution of CuCA.
2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity
PDI-MOF-74(Mg) powder · Powder · N2 adsorption/desorption at 77.3 K after high-vacuum activation at 120 C for at least 12 h
2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity
PDI-MOF-74(Ni) powder · Powder · N2 adsorption/desorption at 77.3 K after high-vacuum activation at 120 C for at least 12 h
2022 · A Novel Electrically Conductive Perylene Diimide-Based MOF-74 Series Featuring Luminescence and Redox Activity
PDI-MOF-74(Zn) powder · Powder · N2 adsorption/desorption at 77.3 K after high-vacuum activation at 120 C for at least 12 h
2022 · A novel Sn-based coordination polymer with high-efficiency and ultrafast lithium storage
as-prepared Sn-DHTPA powder · Powder · Sample degassed at 120 C for 12 h; N2 adsorbate at 77 K
2022 · A one-dimensional conductive metal-organic framework with extended π-d conjugated nanoribbon layers
DDA-Cu MOF crystals / bulk precipitate · Powder · N2 at 77 K; Ar at 87 K
2022 · A Rationally Designed Iron–Dihydroxybenzoquinone Metal–Organic Framework as Practical Cathode Material for Rechargeable Batteries
air-stabilised Fe2(DHBQ)3 powder · Powder · Degassed at 100 C for 5 h before surface area/porosity analysis.
2022 · A stable lanthanum hydroxamate metal-organic framework with radical character and electrical conductivity
activated La-ONDI · Powder · MeOH-exchanged La-ONDI degassed at 120 C using turbomolecular pump for 12 h; N2 adsorption at 77 K and CO2 adsorption at 273 K on AutoSorp IQ.
2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin
Ag-CoNi-MOF nanocomposite powder · Nanosheet · N2 adsorption-desorption isotherm and pore-size distribution for Ag-CoNi-MOF.
2022 · Ag doped Co/Ni bimetallic organic framework for determination of luteolin
CoNi-MOF nanosheets powder · Nanosheet · N2 adsorption-desorption isotherm and pore-size distribution for CoNi-MOF.
2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries
Ni-HTP powder · Powder · O2 adsorption at 298.25 K under ambient atmosphere / relative pressure to 1.0
2022 · Atomic Ruthenium-Riveted Metal-Organic Framework with Tunable d-Band Modulates Oxygen Redox for Lithium-Oxygen Batteries
NiRu-HTP powder · Powder · O2 adsorption at 298.25 K under ambient atmosphere / relative pressure to 1.0
2022 · Boosting the Optoelectronic Performance by Regulating Exciton Behaviors in a Porous Semiconductive Metal-Organic Framework
as-synthesised TbTATAB powder/crystals · Powder · N2 sorption at 77 K.
2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution
Co1Fe1-B · Nanosheet · BET surface area reported for Co1-Fe1 derived catalyst/control.
2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution
Co1Fe1-B-P · Nanosheet · BET surface area reported for Co1-Fe1 derived catalyst/control.
2022 · Boron-doped cobalt-iron bimetal phosphides nanosheets for enhanced oxygen evolution
Co1Fe1-P · Powder · BET surface area reported for Co1-Fe1 derived catalyst/control.
2022 · Bromine Vapor Induced Continuous p- to n-Type Conversion of a Semiconductive Metal-Organic Framework Cu[Cu(pdt)2]
Cu[Cu(pdt)2] pristine · Powder · Reported in introduction as known property of Cu[Cu(pdt)2].
2022 · Bromo- and iodo-bridged building units in metal-organic frameworks for enhanced carrier transport and CO2 photoreduction by water vapor
Activated TMOF-10-NH2(Br) · Powder · Activated sample measured by CO2 isotherms at 273 K and 298 K; Qst from Clausius-Clapeyron analysis.
2022 · Bromo- and iodo-bridged building units in metal-organic frameworks for enhanced carrier transport and CO2 photoreduction by water vapor
Activated TMOF-10-NH2(I) · Powder · Activated samples measured volumetrically at 273 K and 298 K on Micromeritics ASAP 2020; CO2 BET area from 273 K isotherm; H2O vapour at 298 K.
2022 · Chemical structure modulation in conductive MOFs by adjusting the oxidation state of the ligand and introducing alkali metal ions
MnHHB dark-blue powder · Powder · N2 adsorption-desorption at 77 K.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
aHIC · Powder · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
aMMC · Powder · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
aNIC · Powder · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
Cu@C_12 h · Powder · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
Cu@C_1 h · Powder · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
HIC · Electrode · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
MMC · Electrode · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
NIC · Electrode · Textural properties from Table 1.
2022 · Coarsening-induced hierarchically interconnected porous carbon polyhedrons for stretchable ionogel-based supercapacitors
polymer@MOF · Powder · Structure retention and residual metal comparison for mMOF/polymer@MOF.
2022 · Conductive Co-based metal organic framework nanostructures for excellent potassium- and lithium-ion storage: kinetics and mechanism studies
as-synthesised Co-CAT MOF powder · Powder · BET specific surface area and BJH pore-size distribution measured for Co-CAT MOF.
2022 · Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform
NiCo-HHTP nanorods · Powder · N2 adsorption-desorption measurements at 77.3 K after outgassing under vacuum at 60 C for 24 h; pore size reported for NiCo-HHTP.
2022 · Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform
Ni-HHTP monometallic MOF control · Powder · N2 sorption isotherms and pore-size distribution of Ni-HHTP measured at 77 K; instrument section states measurements at 77.3 K after vacuum outgassing at 60 C for 24 h.
2022 · Conjugated Metal-Organic Macrocycles: Synthesis, Characterization, and Electrical Conductivity
CuTOTP-OC2 bulk powder/pellet sample · Powder · 77 K N2 adsorption showed no porosity; 195 K CO2 isotherm gave BET surface area.
2022 · Construction of sulfur vacancies enriched hollow zinc cobalt bimetallic sulfides for high-performance supercapacitors
Co3S4 · Powder · N2 adsorption-desorption tested at 77 K; BET surface area compared with Zn0.3Co2.7S4.
2022 · Construction of sulfur vacancies enriched hollow zinc cobalt bimetallic sulfides for high-performance supercapacitors
Zn0.3Co2.7S4 · Powder · N2 adsorption-desorption tested at 77 K; BET surface area and pore volume discussed.
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 · Specific surface areas calculated for Cu-BHT films prepared at pH 0, 1, and 2.
2022 · Dimensionality Modulates Electrical Conductivity in Compositionally Constant One-, Two-, and Three-Dimensional Frameworks
Activated Ni-3D-ox · Powder · Sample activated at 100 C under high dynamic vacuum (<10^-4 mbar) for 24 h before N2 isotherm at 77 K; additional main-text discussion of activation at 110 C.
2022 · Dual nanozyme based on ultrathin 2D conductive MOF nanosheets intergraded with gold nanoparticles for electrochemical biosensing of H2O2 in cancer cells
Cu-HHTP-NSs · Nanosheet · N2 uptake experiments at 77 K comparing activated Cu-HHTP-bulk, Cu-HHTP-NSs and Au-NPs/Cu-HHTP-NSs.
2022 · Efficient sequestration of radioactive 99TcO4- by a rare 3-fold interlocking cationic metal-organic framework: A combined batch experiments, pair distribution function, and crystallographic investigation
ZJU-X6 powder/material for batch sorption · Powder · N2 adsorption-desorption isotherms measured for ZJU-X6; main text reports very low BET surface area due to nitrate counterions filling the channels.
2022 · Electrical conductivity through π–π stacking in a two-dimensional porous gallium catecholate metal–organic framework
Supercritical CO2-activated Ga9(HOTP)4 powder · Powder · Micromeritics ASAP 2020 Plus; sample in TranSeal tube prepared in dry N2 glovebox, heated to 90 C under dynamic vacuum until outgas rate <2 mTorr/min, N2 isotherm at 77 K.
2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states
Ni/Co-ZIF-67-2 / Ni/Co-ZIF-67 · Nanosheet · BET analysis of synthesized ZIF samples; SI Figure S5 referenced for isotherms.
2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states
Ni/Co-ZIF-67-3 · Nanosheet · BET analysis of synthesized ZIF samples; SI Figure S5 referenced for isotherms.
2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states
Ni/Co-ZIF-67-4 · Nanosheet · BET analysis of synthesized ZIF samples; SI Figure S5 referenced for isotherms.
2022 · Electrocatalytic oxygen evolution reaction at IrOx supported by Ni/Co-ZIF-67: Controlled ratio of metallic Ir and Ir3+ states
ZIF-67 nanosheet powder/control · Nanosheet · BET analysis of synthesized ZIF samples; SI Figure S5 referenced for isotherms.
2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage
Ni-HHTP-160 · Powder · N2 adsorption/desorption isotherms at 77 K; specific surface areas reported in SI text below Fig. S2.
2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage
Ni-HHTP-250 · Powder · N2 adsorption/desorption tests at 77 K; BJH pore size distribution shown in Fig. 2f; BET surface areas are referenced to Fig. S2.
2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage
Ni-HHTP-340 · Powder · N2 adsorption/desorption isotherms at 77 K; specific surface areas reported in SI text below Fig. S2.
2022 · Engineering the modulation of the active sites and pores of pristine metal-organic frameworks for high-performance sodium-ion storage
pristine Ni-HHTP · Powder · N2 adsorption/desorption isotherms at 77 K; specific surface areas reported in SI text below Fig. S2.
2022 · Enhanced VOC adsorption capacity on MOF thin layer with reduced particle size by cryogrinding and microwave method
All MOF powder samples in paper · Powder · N2 adsorption at 77 K using BELSORP-max; samples activated before measurement.
2022 · Enhancing the energy storage performances of metal-organic frameworks by controlling microstructure
A-CuHHTP powder · Powder · Anton Parr Autosorb iQ-XR; ex-situ degassing at 80 C for 24 h; isotherms collected over 24-30 h; AsiQwin 5.21 BET and QSDFT analysis.
2022 · Enhancing the energy storage performances of metal-organic frameworks by controlling microstructure
B-CuHHTP powder · Powder · Same gas sorption protocol as A-CuHHTP.
2022 · Enhancing the energy storage performances of metal-organic frameworks by controlling microstructure
C-CuHHTP powder · Powder · Same gas sorption protocol as A-CuHHTP.
2022 · Fe–O–Zr in MOF for effective photo-Fenton Bisphenol A degradation: Boosting mechanism of electronic transmission
FeUiO-1 · Powder · N2 adsorption used to compare pore-size/surface-area changes of UiO-66 and FeUiO-1.
2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF
As-synthesised Cu-THQ powder · Powder · Sample evacuated under vacuum at 30 C for 30 min, then 45 C for 8 h; Micromeritics ASAP 2020 PLUS; N2-DFT pore-width distribution.
2022 · From 2D to 3D: Postsynthetic Pillar Insertion in Electrically Conductive MOF
Cu-THQ-BPY, Cu2+:BPY feed ratio 1:1 · Powder · Sample evacuated under vacuum at 30 C for 30 min, then 45 C for 8 h; Micromeritics ASAP 2020 PLUS; N2-DFT pore-width distribution.
2022 · Generation of Environmentally Persistent Free Radicals on Metal-Organic Frameworks
MCP-dosed MIL-100(Al) · Powder · MCP/CT-dosed MIL-100(Al), before and after Soxhlet purification; activated under vacuum at 150 C before sorption.
2022 · Generation of Environmentally Persistent Free Radicals on Metal-Organic Frameworks
MCP-dosed MIL-100(Fe) · Powder · MCP/CT-dosed MIL-100(Fe) and MIL-100(Cr); activated at 150 C under vacuum for 12 h.
2022 · Generation of Environmentally Persistent Free Radicals on Metal-Organic Frameworks
MIL-100(Al) powder · Powder · Samples activated under vacuum at 150 C for 12 h; N2 sorption at 77 K over P/P0 0.001-1.
2022 · High efficient solid-phase microextraction based on a covalent organic framework for determination of trifluralin and chlorpyrifos in water and food samples by GC-CD-IMS
Synthesised PTA/TAPTT COF powder · Powder · N2 adsorption/desorption measured at 77 K on Belsorp-mini II analyzer.
2022 · High-Entropy Metal-Organic Framework Arrays Boost Oxygen Evolution Electrocatalysis
HE-MOF nanosheet array electrode on nickel foam · Electrode · HE-MOF porosity from Figure S3.
2022 · Highly Effective Generation of Singlet Oxygen by an Imidazole-Linked Robust Photosensitizing Covalent Organic Framework
activated PyPor-COF · Powder · Activated sample degassed under vacuum at 120 deg C for 12 h.
2022 · Imparting Functionality and Enhanced Surface Area to a 2D Electrically Conductive MOF via Macrocyclic Linker
Pristine Cu-HHTC synthesised at 50 C for 8 h · Powder · N2 sorption at 77 K after evacuation under vacuum at 30 C for 30 min and 80 C for 8 h; BET fit 0.05-0.30 P/P0.
2022 · Imparting Functionality and Enhanced Surface Area to a 2D Electrically Conductive MOF via Macrocyclic Linker
Ni-metalated Cu-HHTC · Powder · N2 sorption isotherms at 77 K comparing pristine, Ni-metalated and Co-metalated Cu-HHTC.
2022 · Imparting Functionality and Enhanced Surface Area to a 2D Electrically Conductive MOF via Macrocyclic Linker
Cu-HHTC synthesised at 30 C · Powder · N2 sorption isotherms and pore size distributions compared for samples synthesised at 30, 40, 50 and 60 C.
2022 · In-Built Fabrication of MOF Assimilated Porous Hollow Carbon from Pre-Hydrolysate for Supercapacitor
C1-ZIF-67 powder · Powder · Micromeritics ASAP 2460, N2 at 77 K; samples degassed at 200 C for more than 6 h; BET from relative pressure 0.02-0.35.
2022 · In-Built Fabrication of MOF Assimilated Porous Hollow Carbon from Pre-Hydrolysate for Supercapacitor
C2-ZIF-67 powder · Powder · Micromeritics ASAP 2460, N2 at 77 K; samples degassed at 200 C for more than 6 h; BET from relative pressure 0.02-0.35.
2022 · Iron-Based 2D Conductive Metal-Organic Framework Nanostructure with Enhanced Pseudocapacitance
Fe-HHTP powder · Powder · Micromeritics ASAP 2020 PLUS; activation by evacuation to 50 umHg, heating to 80 deg C at 10 deg C min-1 and holding for 2 h.
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TBCP-MOF crystals · Single Crystal · 77 K; DMF wash 3 days, acetone exchange 1 day, activated at 120 °C under vacuum for 6 h
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TBML-MOF crystals · Single Crystal · 77 K; DMF wash 3 days, acetone exchange 1 day, activated at 120 °C under vacuum for 6 h
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TML-MOF crystals · Single Crystal · 77 K; DMF wash 3 days, acetone exchange 1 day, activated at 120 °C under vacuum for 6 h
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TM-MOF crystals · Single Crystal · 77 K; DMF wash 3 days, acetone exchange 1 day, activated at 120 °C under vacuum for 6 h
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TNP-MOF crystals · Single Crystal · 77 K; DMF wash 3 days, acetone exchange 1 day, activated at 120 °C under vacuum for 6 h
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TBCP-MOF crystals · Single Crystal · 273 and 298 K at up to 1 atm
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TML-MOF crystals · Single Crystal · 273 and 298 K at up to 1 atm
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TNP-MOF crystals · Single Crystal · 273 and 298 K at up to 1 atm
2022 · Large π-Conjugated Metal-Organic Frameworks for Infrared-Light-Driven CO2Reduction
TNP-MOF after 48 h photocatalytic test · Powder · after 48 h photocatalytic test
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 · 20-30 thick MOF films scraped to 20 mg; evacuated at p < 1e-5 mbar and 393 K for 5 h; BET measured at 77 K.
2022 · Li-TFSI endohedral Metal-Organic frameworks in stable perovskite solar cells for Anti-Deliquescent and restricting ion migration
Li-TFSI@NH2-MIL-101 powder · Powder · comparison of pristine and Li-TFSI loaded NH2-MIL-101
2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity
as-synthesised CP 1 blue needle-shaped crystals · Single Crystal · N2 adsorption-desorption at 77 K over relative pressure P/Po 0-1; PLATON used for crystallographic void volume.
2022 · Ni(II)-Based Coordination Polymer with Pi-Conjugated Organic Linker as Catalyst for Oxygen Evolution Reaction Activity
as-synthesised CP 2 blue crystals · Single Crystal · N2 adsorption-desorption isotherm at 77 K.
2022 · Nickel(II) Cluster-Based Pillar-Layered Metal-Organic Frameworks for High-Performance Supercapacitors
as-synthesised Ni-mba-Na black fibrous product · Powder · Measured at liquid nitrogen temperature (-196 deg C) using Micromeritics ASAP 2020 M.
2022 · NiPd mediated by conductive metal organic frameworks with facilitated electron transfer for assaying of H2O2 released from living cells
Ni3HHTP2 powder · Powder · Ar sorption collected at 87 K; pore size derived from BJH adsorption branch.
2022 · One-Step Solvothermal Synthesis of Raspberry-like NiCo-MOF for High-Performance Flexible Supercapacitors for a Wide Operation Temperature Range
NiCo-MOF-3 powder · Powder · BET surface area and pore-size distributions of NiCo-MOF-1/2/3/4; isotherms are in SI Figure S1.
2022 · Operando Elucidation of Electrocatalytic and Redox Mechanisms on a 2D Metal Organic Framework Catalyst for Efficient Electrosynthesis of Hydrogen Peroxide in Neutral Media
Ni-HAB powder · Powder · Gas adsorption at 77 K after degassing at 100 deg C for 1.5 h.
2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework
Cu3(HHTP)2 air-synthesis particles · Powder · Samples activated under dynamic vacuum at 80 deg C for 20 h; N2 adsorption at 77 K; BET range 0.02-0.09 P/P0.
2022 · Oxidative control over the morphology of Cu3(HHTP)2, a 2D conductive metal-organic framework
Cu3(HHTP)2 air-synthesis rods · Powder · Samples activated under dynamic vacuum at 80 deg C for 20 h; N2 adsorption at 77 K; BET range 0.02-0.09 P/P0.
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 · Samples activated under dynamic vacuum at 80 deg C for 20 h; N2 adsorption at 77 K; BET range 0.02-0.09 P/P0.
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 · Samples activated under dynamic vacuum at 80 deg C for 20 h; N2 adsorption at 77 K; BET range 0.02-0.09 P/P0.
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 · Samples activated under dynamic vacuum at 80 deg C for 20 h; N2 adsorption at 77 K; BET range 0.02-0.09 P/P0.
2022 · Pd-Embedded Ti Metal–Organic Framework Nanostructures for Photocatalytic Reductive N-Formylation of Nitroarenes in Water
Pd1.5%/Ti-MOF · Powder · N2 sorption at 77 K; BET area from P/P0 = 0.05-0.3; BJH pore diameter; degassing at 200 C for 3 h.
2022 · Pd-Embedded Ti Metal–Organic Framework Nanostructures for Photocatalytic Reductive N-Formylation of Nitroarenes in Water
Ti-MOF · Powder · N2 sorption at 77 K; BET area from P/P0 = 0.05-0.3; BJH pore diameter; degassing at 200 C for 3 h.
2022 · Polythiophene hybrid film with zirconium–porphyrin metal–organic framework for improved charge carrier transport and NO2 gas sensing
activated PCN-222 powder · Powder · N2 adsorption-desorption measured at -196 C; pore-size distribution calculated by DFT method.
2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks
Ni3(HATI_C1)2 black powder · Powder · N2 sorption at 77-77.3 K; BET surface area from adsorption curve; QSDFT pore-size distribution in SI.
2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks
Ni3(HATI_C3)2 black powder · Powder · N2 sorption at 77-77.3 K; BET surface area from adsorption curve; QSDFT pore-size distribution in SI.
2022 · Precise tuning of interlayer electronic coupling in layered conductive metal-organic frameworks
Ni3(HATI_C4)2 black powder · Powder · N2 sorption at 77-77.3 K; BET surface area from adsorption curve; QSDFT pore-size distribution in SI.
2022 · Preparation of Bimetallic Conductive Metal-organic Framework Material Ni/Co-CAT for Electrocatalytic Oxygen Reduction 双金属导电金属有机框架材料 Ni/Co-CAT 的制备及其氧还原催化性能研究
Ni-Co-CAT powder · Powder · ASAP 2460; powder samples activated to remove pore solvent; N2 adsorbate; degassing temperature 120 ℃.
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 · N2 sorption of pristine and Mn-decorated powders; pore-size distributions calculated from isotherms using NLDFT.
2022 · Redox-Active Ni(II) Nodes Induced Electrochromism in a Two-Dimensional Conductive Metal-Organic Framework
Ni3(HITP)2 precipitate/powder · Powder · Measured by automatic volumetric sorption analyser at 77.3 K.
2022 · Size-Dependent Properties of Solution-Processable Conductive MOF Nanocrystals
Fe(TA)2 nanoparticles, 48 nm SEM size · Powder · Samples washed with DMF, MeCN and DCM; degassed at 120 C for 24-48 h until degas rate below 2.5 utorr/min.
2022 · sp-Carbon Incorporated Conductive Metal-Organic Framework as Photocathode for Photoelectrochemical Hydrogen Generation
as-synthesised Cu3HHAE2 powder/hexagonal rods · Powder · N2 sorption at 77 K / 77.3 K; powder treated in supercritical CO2 dryer 4 h and activated at 90 deg C overnight / under dynamic vacuum.
2022 · Stacked conductive metal–organic framework nanorods for high-performance vacuum electronic devices
Cu-CAT rough nanorods · Unknown · Nitrogen sorption and pore-size distribution of Cu-CAT nanorods, reported through supplementary Figures S4a-b.
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 · Pore structure tested using JWGB-JK122W sorption analyser; isotherm and BJH pore-size distribution shown.
2022 · Synergistic effect of Co/Ni bimetallic metal–organic nanostructures for enhanced electrochemical energy storage
Co/Ni-MOF-2:1 powder · Powder · N2 sorption of Ni-MOF and Co/Ni-MOF-2:1.
2022 · Synthesis of Tostadas-Shaped Metal-Organic Frameworks for Remitting Capacity Fading of Li-Ion Batteries
NHM; Tostadas-shaped Ni-HITP assembly · Powder · 77.3 K nitrogen adsorption; Quantachrome Autosorb; pore distributions in Figure 2d,e.
2022 · Thousand-fold increase in O2electroreduction rates with conductive MOFs
As-synthesised Co3(HITP)2 powder · Powder · N2 adsorption at 77 K for Co3(HITP)2 and Cu3(HITP)2 powders.
2022 · Thousand-fold increase in O2electroreduction rates with conductive MOFs
As-synthesised Ni3(HITP)2 powder · Powder · N2 adsorption at 77 K after activation at 373 K under dynamic vacuum / 100 C overnight.
2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors
poly-Fe-L1 isolated metallopolymer powder · Powder · Micromeritics Tristar 11, nitrogen adsorption at 77 K; degassed at 120 degrees C for 2 h in flowing N2
2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors
poly-Fe-L2 isolated metallopolymer powder · Powder · Micromeritics Tristar 11, nitrogen adsorption at 77 K; degassed at 120 degrees C for 2 h in flowing N2
2022 · Tunable Capacitive Behavior in Metallopolymer-based Electrochromic Thin Film Supercapacitors
poly-Fe-L3 isolated metallopolymer powder · Powder · Micromeritics Tristar 11, nitrogen adsorption at 77 K; degassed at 120 degrees C for 2 h in flowing N2
2022 · Ultra-thin Two-Dimensional Trimetallic Metal-Organic Framework for Photocatalytic Reduction of CO2
Ni-BDC nanosheets · Nanosheet · N2 at 77 K after 300 C vacuum degassing; CO2 at 273 K
2022 · Ultra-thin Two-Dimensional Trimetallic Metal-Organic Framework for Photocatalytic Reduction of CO2
NiZr-BDC nanosheets · Nanosheet · N2 at 77 K after 300 C vacuum degassing; CO2 at 273 K
2022 · Ultra-thin Two-Dimensional Trimetallic Metal-Organic Framework for Photocatalytic Reduction of CO2
NiZrCu-BDC nanosheets · Nanosheet · N2 at 77 K after 300 C vacuum degassing; CO2 at 273 K
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu0.3BTC-100-8 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-100-14 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-100-20 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-100-3 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-100-5 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-100-8 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-120-14 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-120-20 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-120-3 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-120-5 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-120-8 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-80-14 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-80-20 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-80-3 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-80-5 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu1BTC-80-8 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
1Cu3BTC-100-8 · Powder · Samples degassed at 120 deg C for at least 8 h; BET surface area from P/P0=0.05-0.3; Vpore from micropore plus mesopore volume; Vmicro from t-plot.
2022 · Understanding Solvothermal Growth of Metal-Organic Framework Colloids for CO2Capture Applications
3Cu1BTC-100-8 · Powder · SI Section 7 copper-source variant; N2 adsorption-desorption isotherm in Figure S13b.
2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat
Activated Ni3HHTP2 powder · Powder · ASAP 2460; powders solvent exchanged with acetone, heated at 80 C under vacuum overnight, outgassed at 80 C for 10 h; N2 isotherm at 77 K and 1 bar.
2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor
GO nanosheets · Nanosheet · BET collected at 77 K; GO comparison sample.
2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor
NCMG-10 · Nanosheet · BET collected at 77 K; pore-size distribution analysed by BJH and HK models from adsorption branch.
2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor
NCMG-15 · Nanosheet · BET collected at 77 K; values reported in SI Table S1.
2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor
NCMG-5 · Nanosheet · BET collected at 77 K; values reported in SI Table S1.
2021 · 2D/2D NiCo-MOFs/GO hybrid nanosheets for high-performance asymmetrical supercapacitor
Pristine NiCo-MOF nanosheets · Nanosheet · BET collected at 77 K; pristine-control comparison.
2021 · A comparative study of honeycomb-like 2D π-conjugated metal-organic framework chemiresistors: conductivity and channels
Cu-HITP powders · Powder · N2 sorption isotherms measured at 77 K; BET analysis with BEL-mini X surface area analyser.
2021 · A comparative study of honeycomb-like 2D π-conjugated metal-organic framework chemiresistors: conductivity and channels
Cu3(HHTP)(THQ) nanowires · Powder · Mesoporosity by BJH and microporosity by HK from N2 sorption at 77 K.
2021 · A multifunctional n-doped cu–mofs (N–cu–mof) nanomaterial-driven electrochemical aptasensor for sensitive detection of deoxynivalenol
As-prepared N-Cu-MOF nanoparticles · Powder · N2 adsorption-desorption isotherms used to determine BET-specific surface area and average pore size.
2021 · An Electrically Conducting Three-Dimensional Iron–Catecholate Porous Framework
Fe-HHTP-MOF black microcrystalline powder · Powder · Autosorb 1 at 77.3 K with 99.99% N2; sample evacuated under high vacuum at 120 C for at least 12 h; AsiQwin v3.01 evaluation.
2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework
activated Cd2TTFTB · Powder · Approximately 40 mg MOF; activated before measurement; N2 isotherms at 77 K; BET calculated from relative pressure 0.01-0.1.
2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework
activated Zn2TTFTB · Powder · Approximately 40 mg MOF; activated before measurement; N2 isotherms at 77 K; BET calculated from relative pressure 0.01-0.1.
2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework
(TCNE)xCd2TTFTB series, samples 7-10 · Powder · N2 isotherms at 77 K; CO2 isotherms at 196 K; TCNE-infiltrated Cd samples discussed as nonporous.
2021 · Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework
(TCNE)xZn2TTFTB series, samples 1-6 · Powder · N2 isotherms at 77 K; CO2 isotherms at 196 K; TCNE-infiltrated Zn samples discussed for N2 nonporosity and slow CO2 uptake in samples 1, 3, and 5.
2021 · Cluster-Bridging-Coordinated Bimetallic Metal−Organic Framework as High-Performance Anode Material for Lithium-Ion Storage
As-synthesised Co4-Ir MOF crystal/powder · Powder · BELSORP-max instrument at 77 K; type I isotherm.
2021 · Conductive Metal-Organic Framework for High Energy Sodium-Ion Hybrid Capacitors
as-prepared Ni-MOF powder · Powder · N2 adsorption-desorption collected on Micromeritics ASAP2460 analyser.
2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries
received carbon paper · Electrode · Carbon paper N2 adsorption-desorption isotherm reported in SI caption.
2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries
Ni-BTC particles · Powder · N2 adsorption-desorption result for Ni-BTC reported in main text with isotherm shown in rendered SI Fig. S11.
2021 · Conductive metal-organic frameworks promoting polysulfides transformation in lithium-sulfur batteries
Ni-HHTP particles · Powder · N2 adsorption-desorption isothermal diagram for Ni-HHTP.
2021 · Conductive Stimuli-Responsive Coordination Network Linked with Bismuth for Chemiresistive Gas Sensing
Bi(HHTP) powder from Procedure 1, 2:1 metal:ligand · Powder · Activated/degassed Bi(HHTP), 3FLEX instrument, N2 at 77 K; sample degassed under vacuum at 95 C for 2 days
2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework
activated ZrBPD-4F4TS-Ox · Powder · CO2 at 195 K
2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework
activated ZrBPD-4F4TS · Powder · CO2 at 195 K
2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework
activated ZrBPD-4F4TS-Ox · Powder · N2 at 77 K after activation
2021 · Conjugated crosslinks boost the conductivity and stability of a single crystalline metal-organic framework
activated ZrBPD-4F4TS · Powder · N2 at 77 K after activation
2021 · Coordination environment dependent selectivity of single-site-Cu enriched crystalline porous catalysts in CO2 reduction to CH4
as-synthesised Cu-DBC powder/nanorods · Powder · Sample degassed in vacuum at 120 deg C for 12 h; measured at 298 K
2021 · Coordination environment dependent selectivity of single-site-Cu enriched crystalline porous catalysts in CO2 reduction to CH4
as-synthesised Cu-DBC powder/nanorods · Powder · 77 K N2 adsorption after solvent exchange; pore size distribution by NLDFT
2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbons
PCN-222(Fe) · Powder · CO2 sorption isotherms recorded on a Brunauer-Emmett-Teller surface area and porosity analyser at 298 K; Figure 4 compares PCN-222 and PCN-222(M).
2021 · Effective visible-light CO2 photoreduction over (metallo)porphyrin-based metal–organic frameworks to achieve useful hydrocarbons
PCN-222(Fe) · Powder · N2 adsorption-desorption isotherms recorded on Belsorp Mini-II at 77 K; SI Figure S5 shows type-IV isotherms and rendered SI Table S1 reports BET surface areas and pore volumes.
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 · BET surface area and pore volume for evacuated Na/K MOFs; Rb/Cs had no meaningful N2 adsorption; Mercury/PLATON-SQUEEZE void estimates from crystal structures.
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 · BET surface area and pore volume for evacuated Na/K MOFs; Rb/Cs had no meaningful N2 adsorption; Mercury/PLATON-SQUEEZE void estimates from crystal structures.
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 · BET surface area and pore volume for evacuated Na/K MOFs; Rb/Cs had no meaningful N2 adsorption; Mercury/PLATON-SQUEEZE void estimates from crystal structures.
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 · BET surface area and pore volume for evacuated Na/K MOFs; Rb/Cs had no meaningful N2 adsorption; Mercury/PLATON-SQUEEZE void estimates from crystal structures.
2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity
Anhydrous Fe(dhbq) powder · Powder · 25 C; Fe(dhbq).nH2O initially n = 0; P/P0 up to 0.65 and 1.0
2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity
Anhydrous Fe(dhbq) powder · Powder · 77 K N2 isotherm; Langmuir surface area; Horvath-Kawazoe pore size
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 polycrystalline powder · Powder · 77 K N2 isotherm control for hydrated sample
2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity
Mg(dhbq) powder · Powder · N2 isotherm and Langmuir surface area for M(dhbq), M = Mg
2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity
Mn(dhbq) powder · Powder · N2 isotherm and Langmuir surface area for M(dhbq), M = Mn
2021 · Electron-Conductive Metal-Organic Framework, Fe(dhbq)(dhbq = 2,5-Dihydroxy-1,4-benzoquinone): Coexistence of Microporosity and Solid-State Redox Activity
Zn(dhbq) powder · Powder · N2 isotherm and Langmuir surface area for M(dhbq), M = Zn
2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors
BQ@Cu3(BTC)2 thin film on Cu foil · Thin Film · Nitrogen adsorption-desorption isotherms and BET specific surface area for Cu3(BTC)2 and doped films. Pore-size distribution in SI reports main pore diameters of 1.67 nm.
2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors
Cu3(BTC)2 thin film on Cu foil · Thin Film · Nitrogen adsorption-desorption isotherms and BET specific surface area for Cu3(BTC)2 and doped films. Pore-size distribution in SI reports main pore diameters of 1.67 nm.
2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors
PMDI@Cu3(BTC)2 thin film on Cu foil · Thin Film · Nitrogen adsorption-desorption isotherms and BET specific surface area for Cu3(BTC)2 and doped films. Pore-size distribution in SI reports main pore diameters of 1.67 nm.
2021 · Electronic Doping of Metal-Organic Frameworks for High-Performance Flexible Micro-Supercapacitors
TCNQ@Cu3(BTC)2 thin film on Cu foil · Thin Film · Nitrogen adsorption-desorption isotherms and BET specific surface area for Cu3(BTC)2 and doped films. Pore-size distribution in SI reports main pore diameters of 1.67 nm.
2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing
pristine Cu3(HAB)2 · Pellet · Micromeritics ASAP 2020 PLUS porosimeter.
2021 · Enhancing Electrical Conductivity of Semiconducting MOFs via Defect Healing
HAB-treated Cu3(HAB)2, 30 min · Pellet · Micromeritics ASAP 2020 PLUS porosimeter.
2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation
NiFe-MOF bulk · Powder · BET tests on Micromeritics ASAP 2050; pore volume derived from adsorption branch by BJH
2021 · Facet Engineering in Ultrathin Two-Dimensional NiFe Metal-Organic Frameworks by Coordination Modulation for Enhanced Electrocatalytic Water Oxidation
NiFe-MOF NSs · Nanosheet · BET tests on Micromeritics ASAP 2050; pore volume derived from adsorption branch by BJH
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Fe0.14-Ni0.86-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Fe0.20-Ni0.80-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Fe0.33-Ni0.67-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Fe0.50-Ni0.50-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Fe-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile design of highly effective Fe-modified bimetallic Fex–Ni1−x-MOFs catalysts with rodlike structures for low-temperature NO reduction by CO
Ni-MOFs · Powder · N2 adsorption-desorption; NOVA 1200 instrument.
2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction
As-prepared Co-BTC crystals/powder · Powder · Nitrogen adsorption-desorption isotherm at 77 K with automated gas sorption analyser; NLDFT/Tarazona model for pore-size distributions.
2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction
As-prepared Cu-BTC blue crystals/powder · Powder · Nitrogen adsorption-desorption isotherm at 77 K with automated gas sorption analyser; NLDFT/Tarazona model for pore-size distributions.
2021 · Facile synthesis of Ni-, Co-, Cu-metal organic frameworks electrocatalyst boosting for hydrogen evolution reaction
As-prepared Ni-BTC precipitate/powder · Powder · Nitrogen adsorption-desorption isotherm at 77 K with automated gas sorption analyser; NLDFT/Tarazona model for pore-size distributions.
2021 · From n- To p-Type Material: Effect of Metal Ion on Charge Transport in Metal-Organic Materials
Ni-HITP powder · Powder · N2 isotherms at 77 K after pore clearing and vacuum activation.
2021 · From n- To p-Type Material: Effect of Metal Ion on Charge Transport in Metal-Organic Materials
a-Pd-HITP powder · Powder · SI N2 isotherm for MOG analogues; value read from figure legend.
2021 · From n- To p-Type Material: Effect of Metal Ion on Charge Transport in Metal-Organic Materials
a-Pt-HITP powder · Powder · N2 isotherms at 77 K after pore clearing and vacuum activation.
2021 · Heterometallic Actinide-Containing Photoresponsive Metal-Organic Frameworks: Dynamic and Static Tuning of Electronic Properties
Zr-MOF powder · Powder · Reported pore size of parent Zr-MOF and actinide analogues used to justify accommodation of spiropyran-merocyanine photoisomerisation.
2021 · Highly Selective and Sensitive Detection of Volatile Sulfur Compounds by Ionically Conductive Metal-Organic Frameworks
Cu-TCPP IC-MOF thin-film sensor on ITO interdigital electrodes · Electrode · Pore size and functional group comparison for Cu-TCPP, Cu-THPP, and Cu-BTEC
2021 · Immobilizing Redox-Active Tricycloquinazoline into a 2D Conductive Metal–Organic Framework for Lithium Storage
Pristine Cu-HHTQ black powder · Powder · N2 sorption at 77 K using BELSORP-max II.
2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks
Cu3(HHTP)2 powder sample A · Powder · N2 at 77 K; degassed 80 C 24 h in Schlenk flask plus in situ 80 C 24 h on VacPrep.
2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks
Cu3(HHTP)2 powder sample B · Powder · N2 at 77 K; same analysis method as sample A.
2021 · Insights into the electric double-layer capacitance of two-dimensional electrically conductive metal-organic frameworks
Cu3(HHTP)2 powder sample X · Powder · N2 at 77 K; sample soaked after washing.
2021 · Large-area synthesis of nanoscopic catalyst-decorated conductive MOF film using microfluidic-based solution shearing
Cu3(HHTP)2 thick film collected for BET · Thin Film · 77 K N2 isotherms after evacuation at P < 1e-5 mbar and 393 K for 5 h
2021 · Large-area synthesis of nanoscopic catalyst-decorated conductive MOF film using microfluidic-based solution shearing
Pt@Cu3(HHTP)2 thick film collected for BET · Thin Film · 77 K N2 isotherms after evacuation at P < 1e-5 mbar and 393 K for 5 h
2021 · Macrocycle-Based Metal-Organic Frameworks with NO2-Driven On/Off Switch of Conductivity
MOF A-100 heated/dehydrated crystals · Single Crystal · CO2 adsorption/desorption isotherm at 273 K; BET surface area and pore diameter reported.
2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport
PCN-700_NDI_FeFe powder · Powder · N2 adsorption at 77 K after activation at 85 C under active vacuum (1 x 10^-4 Pa).
2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport
PCN-700_NDI_ta powder · Powder · N2 adsorption at 77 K after activation at 85 C under active vacuum (1 x 10^-4 Pa).
2021 · Mimicking the Electron Transport Chain and Active Site of [FeFe] Hydrogenases in One Metal-Organic Framework: Factors That Influence Charge Transport
PCN-700 MOF powder/crystals · Powder · N2 adsorption at 77 K after activation at 85 C under active vacuum (1 x 10^-4 Pa).
2021 · Missing-Linker 2D Conductive Metal Organic Frameworks for Rapid Gas Detection
as-synthesized missing-linker aNi-HAB solid · Powder · Sample heated to 100 deg C under dynamic vacuum of 4 mtorr until outgas rate <2 mtorr/min.
2021 · MOF Nanosheet Reconstructed Two-Dimensional Bionic Nanochannel for Protonic Field-Effect Transistors
Cu-TCPP thin film with 10 layer-by-layer deposition cycles · Thin Film · Sorption test of Cu-TCPP thin film; N2 and H2O uptake versus relative pressure
2021 · MOF-74(M) Films Obtained through Vapor-Assisted Conversion - Impact on Crystal Orientation and Optical Properties
MOF-74(Co) thin film on gold · Thin Film · Activated nonoriented MOF-74(Co) film on gold heated at 120 deg C for 12 h; krypton sorption at 77 K.
2021 · MOF-74(M) Films Obtained through Vapor-Assisted Conversion - Impact on Crystal Orientation and Optical Properties
MOF-74(Mg) thin film on gold, oriented · Thin Film · Activated oriented MOF-74(Mg) film heated at 120 deg C for 12 h; krypton sorption at 77 K.
2021 · MOF-74(M) Films Obtained through Vapor-Assisted Conversion - Impact on Crystal Orientation and Optical Properties
MOF-74(Ni) thin film on glass · Thin Film · Activated nonoriented MOF-74(Ni) film on glass heated at 120 deg C for 12 h; krypton sorption at 77 K.
2021 · MOF-74(M) Films Obtained through Vapor-Assisted Conversion - Impact on Crystal Orientation and Optical Properties
MOF-74(Zn) thin film on gold · Thin Film · Activated MOF-74(Zn) film heated at 120 deg C for 12 h; krypton sorption at 77 K.
2021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches
NH2-UiO-66-10-OH · Pellet · CO2 adsorption isotherms of NH2-UiO-66-10 and NH2-UiO-66-10-OH at 298 K.
2021 · Processable UiO-66 Metal-Organic Framework Fluid Gel and Electrical Conductivity of Its Nanofilm with Sub-100 nm Thickness
UiO-66 fluid gel · Unknown · MicrotracBEL BELSORP-mini II at -196 C; samples degassed at 150 C under vacuum for 24 h before adsorption.
2021 · Processable UiO-66 Metal-Organic Framework Fluid Gel and Electrical Conductivity of Its Nanofilm with Sub-100 nm Thickness
UiO-66 fluid gel · Unknown · MicrotracBEL BELSORP-max at 25 C; degassed at 150 C under vacuum for 24 h before adsorption.
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 · N2 sorption isotherm and pore-size distribution measured to assess surface area and porosity.
2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs
Ni MOF catalyst · Powder · Small-angle XRD patterns and BJH pore-size distributions for Ni MOF and X-Ni MOFs.
2021 · Si nanoparticles confined within a conductive 2D porous Cu-based metal–organic framework (Cu3(HITP)2) as potential anodes for high-capacity Li-ion batteries
Si@Cu3(HITP)2-5 · Powder · Specific surface area and average pore diameter of pure Si, pure Cu-MOF, and Si@Cu3(HITP)2 composites.
2021 · Soft Electrochemical Actuators with a Two-Dimensional Conductive Metal-Organic Framework Nanowire Array
core-shell Ni-CAT NWAs/CNF electrode · Electrode · N2 sorption at 77 K after degassing at 100 C under vacuum (10^-5 mbar) for 12 h; BET surface area and BJH pore distribution.
2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework
Freestanding CCM film · Thin Film · Samples degassed at 100 C under kinetic vacuum (<10^-5 mmHg) for 10 h before N2 sorption.
2021 · Spindle-like Ni3(HITP)2 MOFs: Synthesis and Li+ storage mechanism
as-prepared Ni3(HITP)2 MOF powder · Powder · BET measured on Micromeritics ASAP 2020; pore sizes assigned using slit/cylindrical NLDFT model.
2021 · Stabilization of NASICON-Type Electrolyte against Li Anode via an Ionic Conductive MOF-Incorporated Adhesive Interlayer
as-obtained ZIF-67 nanoparticles · Powder · samples degassed under dynamic vacuum prior to sorption
2021 · Synthesis of a novel double-ligand nickel conductive metal–organic framework material and its electrochemical characterization for supercapacitors
Ni-MOF green powder · Powder · N2 adsorption/desorption isotherms and BJH desorption pore-size distribution for Ni-MOF.
2021 · Synthesis, identification and application of metal organic framework for removal of industrial cationic dyes
Vacuum-dried ZIF-7 · Powder · Nitrogen adsorption-desorption isotherms at 77 K; BET surface area and BJH pore size extracted.
2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors
Co3(HITP)2 bulk powder · Powder · N2 sorption at 77 K; samples outgassed at 150 degrees C for 6 h under 10-6 Torr before adsorption according to SI.
2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors
Co-MOF exfoliated nanosheets · Nanosheet · N2 sorption at 77 K after exfoliation.
2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors
Mn3(HITP)2 bulk powder · Powder · N2 sorption at 77 K; samples outgassed at 150 degrees C for 6 h under 10-6 Torr before adsorption according to SI.
2021 · The Different Roles of Cobalt and Manganese in Metal-Organic Frameworks for Supercapacitors
Mn-MOF exfoliated nanosheets · Nanosheet · N2 sorption at 77 K after exfoliation.
2021 · The Origins of Ion Conductivity in MOF-Ionic Liquids Hybrid Solid Electrolytes
MIL-121 · Powder · N2 adsorption used as context for MIL-121 pore accessibility
2021 · Two-dimensional d-π conjugated metal-organic framework based on hexahydroxytrinaphthylene
activated Cu3(HHTN)2 for N2 sorption · Powder · Activated Cu3(HHTN)2 measured after acetone exchange, supercritical CO2 drying, and vacuum degassing.
2021 · Ultra-Stable Metal-Organic Framework with Concurrent High Proton Conductivity and Fluorescence Sensing for Nitrobenzene
yellow block single crystals of compound 1 · Single Crystal · water vapour adsorption of compound 1 measured at different relative humidities; plotted as mass uptake versus P/P0
2021 · Vapor-Induced Superionic Conduction of Magnesium Ions in a Metal-Organic Framework
Mg-MOF-74 superset {Mg(TFSI)2}x loading series · Powder · Samples completely dehydrated under vacuum at 130 deg C before N2 adsorption.
2021 · Vapor-Induced Superionic Conduction of Magnesium Ions in a Metal-Organic Framework
Mg-MOF-74 superset {Mg(TFSI)2}0.15 · Powder · MeOH and MeCN adsorption isotherms measured for x = 0 and x = 0.15 at 298 K; DEC adsorption also discussed. Samples dried under vacuum at 130 deg C overnight before measurements.
2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study
HITP_A Ni3(HITP)2 powder batch · Powder · N2 adsorption at 77 K; BET fit shown in SI Fig. S2.
2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study
HITP_B Ni3(HITP)2 powder batch · Powder · N2 adsorption at 77 K; BET fit shown in SI Fig. S3.
2021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study
HITP_C Ni3(HITP)2 powder batch · Powder · N2 adsorption at 77 K; BET fit shown in SI Fig. S4.
2020 · 2D Semiconducting Metal–Organic Framework Thin Films for Organic Spin Valves
Cu3(HHTP)2 powder · Powder · Powder activated at 373 K under vacuum (10^-5 mbar) for 6 h before analysis.
2020 · A Dual-Ligand Porous Coordination Polymer Chemiresistor with Modulated Conductivity and Porosity
Cu3(HHTP)(THQ) nanowire black powder · Powder · N2 sorption at 77 K using BEL-mini X surface area analyser.
2020 · A Light-Responsive Metal–Organic Framework Hybrid Membrane with High On/Off Photoswitchable Proton Conductivity
SSP@ZIF-8-10% membrane · Thin Film · Specific surface area and pore volume measured after activation at 100 degC for 12 h.
2020 · A Nanotubular Metal–Organic Framework with a Narrow Bandgap from Extended Conjugation**
GTUB-4 crystallographic fixed-atom simulation cell · Model · 3 x 1 x 1 replicated crystallographic cell; framework atoms fixed; He probe for pore volume; N2 probe with 3.31 A nitrogen atom size for surface area; 14.0 A LJ cutoff.
2020 · Colloidal crystal engineering with metal–organic framework nanoparticles and DNA
DNA-PEG5k-functionalised PCN-222 PAEs · Powder · Micromeritics Tristar II 3020 at 77 K; sample heated to 150 deg C under vacuum.
2020 · Colloidal crystal engineering with metal–organic framework nanoparticles and DNA
DNA-PEG5k-functionalised UiO-66 PAEs · Powder · Micromeritics Tristar II 3020 at 77 K; sample heated to 150 deg C under vacuum.
2020 · Conductive Metal-Organic Frameworks for Amperometric Sensing of Paracetamol
As-synthesised NiCu-CAT nanocrystals · Powder · Materials Studio 8.0 model based on the CIF of Ni-CAT; Supplementary Figure 7 compares paracetamol size with the Ni/Cu-CAT channel.
2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers
LSCF NFs · Powder · N2 adsorption-desorption; BET surface area and BJH pore size distribution. SI caption states measurements at 77 K.
2020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers
LSCF@Ni3(HITP)2-2 · Powder · N2 adsorption-desorption; BET surface area and BJH pore size distribution. SI caption states measurements at 77 K.
2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction
Ni3(Ni3.HAHATN)2 nanosheets · Nanosheet · Nitrogen sorption performed after degassing Ni3(Ni3.HAHATN)2 at 150 C for 10 h.
2020 · Conjugated Copper–Catecholate Framework Electrodes for Efficient Energy Storage
As-synthesised Cu-DBC powder · Powder · Measured at 77 K after activation at 120 C for 12 h under vacuum (10-5 bar).
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
Co3(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
(Co0.51Cu2.49)(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
(Co1.14Ni1.86)(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
Cu3(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
(Cu0.50Ni2.50)(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys
Ni3(HITP)2 powder/pellet · Powder · Activated at 90 C under high dynamic vacuum (<1e-4 mbar) for 24 h; N2 at 77 K; Micromeritics ASAP 2020 Plus.
2020 · Direct Evidence of Photoinduced Charge Transport Mechanism in 2D Conductive Metal Organic Frameworks
Cu-THQ powder · Powder · N2 adsorption isotherm at 77 K; BET surface areas reported for Cu-THQ and Cu/Zn-THQ.
2020 · Direct Evidence of Photoinduced Charge Transport Mechanism in 2D Conductive Metal Organic Frameworks
Cu/Zn-THQ powder · Powder · N2 adsorption isotherm at 77 K for Cu/Zn-THQ.
2020 · Direct Evidence of Photoinduced Charge Transport Mechanism in 2D Conductive Metal Organic Frameworks
Zn-THQ powder · Powder · N2 sorption isotherm at 77 K shown for Zn-THQ in SI; no BET area is explicitly reported in the text layer.
2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks
HoHHTP powder · Powder · Measured at 77 K after activation at 90 deg C under dynamic vacuum until outgas rate <2 mTorr/min; BET fits satisfied consistency criteria.
2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks
LaHHTP powder · Powder · Measured at 77 K after activation at 90 deg C under dynamic vacuum until outgas rate <2 mTorr/min; BET fits satisfied consistency criteria.
2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks
NdHHTP powder · Powder · Measured at 77 K after activation at 90 deg C under dynamic vacuum until outgas rate <2 mTorr/min; BET fits satisfied consistency criteria.
2020 · Efficient and tunable one-dimensional charge transport in layered lanthanide metal–organic frameworks
YbHHTP powder · Powder · Measured at 77 K after activation at 90 deg C under dynamic vacuum until outgas rate <2 mTorr/min; BET fits satisfied consistency criteria.
2020 · Electrical Conductivity in a Porous, Cubic Rare-Earth Catecholate
Activated Y6HOTP2 nitrogen-sorption powder · Powder · Micromeritics ASAP 2020 Plus; sample activated under dynamic vacuum; N2 isotherm measured in liquid nitrogen bath at 77 K.
2020 · Electrically Conductive 3D Metal-Organic Framework Featuring π-Acidic Hexaazatriphenylene Hexacarbonitrile Ligands with Anion-πInteraction and Efficient Charge-Transport Capabilities
Evacuated [Ag2(HATHCN)(CF3SO3)2]n bulk material · Powder · Activated MOF heated at 100 C under vacuum for 6 h; N2 sorption isotherms measured at 77 K on Quantachrome Autosorb iQ.
2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst
ZIF@HMCS-m series · Powder · Pore structure and surface area of HMCS, ZIF-67 and ZIF@HMCS-m
2020 · Encapsulating metal organic framework into hollow mesoporous carbon sphere as efficient oxygen bifunctional electrocatalyst
ZIF@HMCS-m series · Powder · Supplementary Table S1 physical characterisation of HMCS, ZIF-67 and ZIF@HMCS-m samples.
2020 · Enhanced bioelectrochemical performance caused by porous metal-organic framework MIL-53(Fe) as the catalyst in microbial fuel cells
MIL-53(Fe) yellow powder · Powder · Main text describes nanopores, rich voids and large surface area as structural features relevant to catalysis.
2020 · Enhancement in electrical conductivity of a porous indium based metal-organic framework upon I2 uptake: Combined experimental and theoretical investigations
I2@1 - 7 days · Powder · N2 adsorption profile for pristine 1 and I2@1 after 3, 5 and 7 days iodine uptake.
2020 · Heteroatom-doped 3D porous carbon architectures for highly stable aqueous zinc metal batteries and non-aqueous lithium metal batteries
NOCA@CF · Electrode · Nitrogen adsorption/desorption isotherms at 77 K and pore size distribution.
2020 · High Thermopower in a Zn-Based 3D Semiconductive Metal-Organic Framework
Zn-HAB activated at 80 C · Powder · Powder activated at 80 C before sorption measurement.
2020 · High Thermopower in a Zn-Based 3D Semiconductive Metal-Organic Framework
Zn-HAB activated at room temperature · Powder · Gas adsorption using Autosorb IQ2; powder dried at room temperature for 2 h for sorption measurement.
2020 · High-performance non-enzymatic glucose detection: Using a conductive Ni-MOF as an electrocatalyst
Pristine conductive Ni-MOF black powder · Powder · Pore structure and specific surface area obtained by BET method from nitrogen adsorption/desorption isotherms.
2020 · Highly Conductive Two-Dimensional Metal-Organic Frameworks for Resilient Lithium Storage with Superb Rate Capability
as-prepared Cu-BHT powder · Powder · Cu-BHT MOFs; SI Figure S3
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 · N2 at 77 K; CO2 at 298 K
2020 · In Situ Growth of Lithiophilic MOF Layer Enabling Dendrite-free Lithium Deposition
Cu-MOF-24 h · Electrode · Integrated current collector cut into small pieces.
2020 · In Situ Growth of Lithiophilic MOF Layer Enabling Dendrite-free Lithium Deposition
Cu-MOF-30 min · Electrode · Integrated current collector cut into small pieces because Cu-MOF layer could not easily be scraped from Cu foil.
2020 · Interdigitated conducting tetrathiafulvalene-based coordination networks
Networks 4/5 native powder, unspecified material assignment · Powder · Initial porosity attempt; thermal activation at 80 C caused decomposition and small measured specific surface.
2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways
Cd activated bulk microcrystalline powder · Powder · 77 K nitrogen isotherm after supercritical CO2 drying and evacuation at 50 degrees C
2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways
Mn activated bulk microcrystalline powder · Powder · 77 K nitrogen isotherm after supercritical CO2 drying and evacuation at 50 degrees C
2020 · Isoreticular Linker Substitution in Conductive Metal–Organic Frameworks with Through-Space Transport Pathways
Zn activated bulk microcrystalline powder · Powder · 77 K nitrogen isotherm after supercritical CO2 drying and evacuation at 50 degrees C
2020 · Multiscale optimization of Li-ion diffusion in solid lithium metal batteries: Via ion conductive metal-organic frameworks
LCMOF-1 half-inch pellet · Pellet · BET surface area after LiTFSI/PC loading.
2020 · Multiscale optimization of Li-ion diffusion in solid lithium metal batteries: Via ion conductive metal-organic frameworks
UiO-66-2CO2H-NDP · Powder · BET surface area for UiO-66-2CO2H-NDP.
2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure
Co-THBQ well-crystallised powder · Powder · N2 adsorption-desorption at 77 K.
2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure
Fe-THBQ black powder · Powder · N2 adsorption-desorption at 77 K.
2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure
Mn-THBQ powder · Powder · N2 adsorption-desorption at 77 K.
2020 · Particle size dependence of proton conduction in a cationic lanthanum phosphonate MOF
as-synthesised PCMOF21-AcO bulk powder · Powder · PCMOF21-AcO activated at 100 deg C overnight; adsorption isotherm shown in SI Figure S11.
2020 · Phosphonate Metal–Organic Frameworks: A Novel Family of Semiconductors
Hand-picked TUB75 crystals · Single Crystal · Surface area value cited from reference 38; method not restated in supplied main/SI.
2020 · Pillared nickel-based metal-organic frameworks as electrode material with high electrochemical performance
(Zn/Ni)2(bdc)2P powder · Powder · JW-BK200B surface area analyser at 77 K; BET method for SBET; QSDFT model for PSD using N2 at 77 K on carbon slit pore.
2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing
activated ZZU-1 crystals · Powder · Activated crystals; N2 adsorption/desorption at 77 K
2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing
activated ZZU-1 crystals · Powder · Water vapour uptake at 25 deg C for activated ZZU-1 and ZZU-2
2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing
activated ZZU-2 crystals · Powder · Activated crystals; N2 adsorption/desorption at 77 K
2020 · Proton-Conductive 3D LnIII Metal–Organic Frameworks for Formic Acid Impedance Sensing
activated ZZU-2 crystals · Powder · Water vapour uptake at 25 deg C for activated ZZU-1 and ZZU-2
2020 · Self-assembled Mo doped Ni-MOF nanosheets based electrode material for high performance battery-supercapacitor hybrid device
M-NMN-1 · Electrode · M-NMN-1 porosity from N2 adsorption-desorption and BJH/BET analyses.
2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction
MoOx-SIM-NDC-SALI powder · Powder · 77 K N2 sorption; P/P0 = 0.005-0.1
2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction
MoSx-SIM-NDC-SALI powder/single crystals · Single Crystal · Sulfide-based material after H2S treatment brought into argon-filled glovebox; ca. 40 mg mounted without additional treatment; N2 sorption at 77 K
2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction
NDC-SALI powder · Powder · 77 K N2 sorption; P/P0 = 0.005-0.1
2020 · Single-Site, Single-Metal-Atom, Heterogeneous Electrocatalyst: Metal–Organic-Framework Supported Molybdenum Sulfide for Redox Mediator-Assisted Hydrogen Evolution Reaction
NU-1000 powder · Powder · Micromeritics Tristar II 3020 at 77 K; P/P0 = 0.005-0.1; non-air-sensitive samples activated at 120 degrees C for 12 h
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 · Nitrogen sorption at 77 K; products scraped from NWA/Cu foils heated to 100 C under vacuum for 10 h; BET surface area calculated from N2 adsorption isotherm.
2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor
MIL-101(Fe)@Fe3O4 nanoparticles · Powder · Quantachrome Autosorb-6; BET surface area, pore volume and average pore width
2020 · Synthesis and characterization of Fe3O4-supported metal–organic framework MIL-101(Fe) for a highly selective and sensitive hydrogen peroxide electrochemical sensor
Fe3O4 nanoparticles · Powder · Quantachrome Autosorb-6; BET surface area, pore volume and average pore width
2020 · Synthesis of a copper 1,3,5-triamino-2,4,6-benzenetriol metal-organic framework
Cu3(TABTO)2-Ar powder · Powder · Sample degassed under vacuum at 100 C for 10 h before measurement.
2020 · The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands
1, activated pristine dhMOF · Powder · Porosity of activated pristine dhMOF; CO2 sorption isotherms are in missing Figure S1; SI: Quantachrome Autosorb iQ Gas Sorption Analyzer after EtOH solvent exchange and high-vacuum activation
2020 · The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands
1a, iodine-treated washed evacuated dhMOF · Powder · Porosity of iodine-treated partially oxidised 1a; CO2 sorption isotherms are in missing Figure S1; SI: Quantachrome Autosorb iQ Gas Sorption Analyzer after EtOH solvent exchange and high-vacuum activation
2020 · Three-dimensional Co/Ni bimetallic organic frameworks for high-efficient catalytic ozonation of atrazine: Mechanism, effect parameters, and degradation pathways analysis
Co-MOF red crystals · Powder · TriStar II Plus physisorption analyser at 77 K.
2020 · Three-dimensional Co/Ni bimetallic organic frameworks for high-efficient catalytic ozonation of atrazine: Mechanism, effect parameters, and degradation pathways analysis
Co/Ni-MOF brown powder · Powder · TriStar II Plus physisorption analyser at 77 K.
2020 · Three-dimensional Co/Ni bimetallic organic frameworks for high-efficient catalytic ozonation of atrazine: Mechanism, effect parameters, and degradation pathways analysis
Ni-MOF green crystals · Powder · TriStar II Plus physisorption analyser at 77 K.
2020 · Tuning Lewis acidity of MIL-88B-Fe with mix-valence coordinatively unsaturated iron centers on ultrathin Ti3C2 nanosheets for efficient photo-Fenton reaction
CUCs-MIL-88B-Fe powder · Powder · N2 sorption at 77 K; BET surface area and BJH pore-size distribution.
2020 · Tuning Lewis acidity of MIL-88B-Fe with mix-valence coordinatively unsaturated iron centers on ultrathin Ti3C2 nanosheets for efficient photo-Fenton reaction
CUCs-MIL-88B-Fe/Ti3C2 powder · Powder · N2 sorption at 77 K; BET surface area and BJH pore-size distribution.
2020 · Tuning Lewis acidity of MIL-88B-Fe with mix-valence coordinatively unsaturated iron centers on ultrathin Ti3C2 nanosheets for efficient photo-Fenton reaction
MIL-88B-Fe powder · Powder · N2 sorption at 77 K; BET surface area and BJH pore-size distribution.
2020 · Two-Dimensional Conductive Metal-Organic Frameworks Based on Truxene
truxene-Cu cMOF black powder · Powder · ASAP 2020; each 100 mg sample degassed at 200 deg C for 24 h and backfilled with N2; N2 adsorption at 77 K.
2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction
Ni-HAB-H high-crystallinity powder · Powder · Gas adsorption measured on Micromeritics ASAP 2020/ASAP2420 after drying/degassing; N2 sorption at 77 K.
2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction
Ni-HAB-L low-crystallinity powder · Powder · Gas adsorption measured on Micromeritics ASAP 2020/ASAP2420 after drying/degassing; N2 sorption at 77 K.
2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol
AuHPCN-222 activated powder · Powder · Nitrogen adsorption-desorption isotherms measured at 77 K; pore-size distribution by Saito-Foley method.
2020 · Ultrasmall Au(0) Inserted Hollow PCN-222 MOF for the High-Sensitive Detection of Estradiol
HPCN-222 activated powder · Powder · Nitrogen adsorption-desorption isotherms measured at 77 K; pore-size distribution by Saito-Foley method.
2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis
bulk HHB-Cu powder · Powder · Low-pressure N2 adsorption at 77 K for surfactant-free bulk HHB-Cu.
2020 · Ultrathin two-dimensional conjugated metal-organic framework single-crystalline nanosheets enabled by surfactant-assisted synthesis
HHB-Cu nanosheets · Nanosheet · Low-pressure N2 adsorption at 77 K.
2020 · Ultrathin two-dimensional π-d conjugated coordination polymer Co3(hexaaminobenzene)2 nanosheets for highly efficient oxygen evolution
Co-HAB-NSs · Nanosheet · BET specific surface area measured using nitrogen sorption isotherms at 77 K; pore-size distributions calculated using BJH.
2020 · Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
50-50 Zn:Co ZIF powder · Powder · BET surface area and porosity measurements on ZIF-8, ZIF-67, and Zn:Co (1:1).
2020 · Understanding the mechanism of high capacitance in nickel hexaaminobenzene-based conductive metal-organic frameworks in aqueous electrolytes
NiHAB powder · Powder · NiHAB powder dried under reduced pressure (~10 mTorr) at 200 C for 20 h in a sealed gas sorption cell, transferred under reduced pressure, analysed on Micromeritics 3Flex at 77 K with >99.999% N2; PSD fitted with simulated NLDFT model for pillared clays assuming cylindrical pores.
2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework
FeTHQ activated for BET · Powder · FeTHQ degassed at 60 deg C for 2 h followed by 100 deg C for 8 h.
2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence
ANMOF-74(Co) bulk powder · Powder · Nitrogen sorption at 77 K after activation/drying; BET pressure range chosen with AsiQwin BET assistant; QSDFT pore-size calculation.
2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence
ANMOF-74(Mg) bulk powder · Powder · Nitrogen sorption at 77 K after activation/drying; BET pressure range chosen with AsiQwin BET assistant; QSDFT pore-size calculation.
2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence
ANMOF-74(Mn) bulk powder · Powder · Nitrogen sorption at 77 K after activation/drying; BET pressure range chosen with AsiQwin BET assistant; QSDFT pore-size calculation.
2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence
ANMOF-74(Ni) bulk powder · Powder · Nitrogen sorption at 77 K after activation/drying; BET pressure range chosen with AsiQwin BET assistant; QSDFT pore-size calculation.
2019 · A highly crystalline anthracene-based MOF-74 series featuring electrical conductivity and luminescence
ANMOF-74(Zn) bulk powder · Powder · Nitrogen sorption at 77 K after activation/drying; BET pressure range chosen with AsiQwin BET assistant; QSDFT pore-size calculation.
2019 · A Highly Proton-Conductive 3D Ionic Cadmium-Organic Framework for Ammonia and Amines Impedance Sensing
MOF 1 activated sample for adsorption isotherms · Powder · NH3, methylamine, dimethylamine, trimethylamine and ethylamine adsorption/desorption at 25 C; reported at P/P0 0.05 and 0.9.
2019 · A Highly Proton-Conductive 3D Ionic Cadmium-Organic Framework for Ammonia and Amines Impedance Sensing
MOF 1 activated sample for adsorption isotherms · Powder · H2O vapour adsorption-desorption at 25 C; values reported at P/P0 0.05 and 0.95.
2019 · A Li+ conductive metal organic framework electrolyte boosts the high-temperature performance of dendrite-free lithium batteries
ZIF-67 MOF powder · Powder · Surface areas determined using Autosorb-iQ2-MP analyser.
2019 · A semiconducting layered metal-organic framework magnet
as-synthesised K3Fe2[PcFe-O8] dark black powder · Powder · Low-pressure N2 sorption at 77 K after supercritical CO2 drying and 80 C overnight activation.
2019 · A semiconducting layered metal-organic framework magnet
LixFe2[PcFe-O8] powder · Powder · N2 adsorption isotherm at 77 K after supercritical CO2 drying.
2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance
Ni0-COF powder · Powder · Type-I sorption isotherm for Ni0-COF.
2019 · A two-dimensional semiconducting covalent organic framework with nickel(II) coordination for high capacitive performance
Ni-COF black powder · Powder · Type-I N2 sorption with sharp uptake at P/P0 < 0.01.
2019 · Bottom-Up Fabrication of 1D Cu-based Conductive Metal–Organic Framework Nanowires as a High-Rate Anode towards Efficient Lithium Storage
as-obtained Cu-CAT NWs · Powder · Autosorb-IQ/MP surface area analyser; adsorption branch used for BET SSA and pore volume at P/P0 = 0.99.
2019 · Catalytic Metal Nanoparticles Embedded in Conductive Metal–Organic Frameworks for Chemiresistors: Highly Active and Conductive Porous Materials
Cu3(HHTP)2, Pd@Cu3(HHTP)2, and Pt@Cu3(HHTP)2 powder comparison set · Powder · N2 adsorption/desorption at 77 K; surface area calculated by BET method.
2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors
CNF@Ni-HITP nanopaper · Electrode · Samples degassed at 100 degrees C under kinetic vacuum (<10^-5 mmHg) for 10 h before measurement.
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.
2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption
Loose Cu[Ni(pdt)2] powder for adsorption isotherms · Powder · Gas adsorption data measured between 0 and 1.1 bar using a Micromeritics 3-Flex; samples heated at 90 C overnight and reactivated at 90 C between isotherms.
2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption
Loose Cu[Ni(pdt)2] powder for adsorption isotherms · Powder · Activated Cu[Ni(pdt)2] powder; 77 K N2 isotherm; sample heated at 90 C before adsorption measurements.
2019 · Conductive metal–organic framework with redox metal center as cathode for high rate performance lithium ion battery
Cu3(HHTP)2 crystalline powder · Powder · Samples degassed at 150 degC under vacuum for 4 h; N2 isotherms measured at 77 K.
2019 · Conductive MOF-Modified Separator for Mitigating the Shuttle Effect of Lithium-Sulfur Battery through a Filtration Method
As-synthesised Ni3(HITP)2 powder · Powder · N2 adsorption-desorption measured at 77 K.
2019 · Construction of 1D conductive Ni-MOF nanorods with fast Li+ kinetic diffusion and stable high-rate capacities as an anode for lithium ion batteries
As-synthesised Ni-CAT nanorods · Powder · Autosorb-IQ/MP surface area analyser; Fig. S1 isotherm and meso-/micro-pore size distribution.
2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks
Activated powder of compound 1 · Powder · N2 adsorption at 77 K after activation; BET areas reported in main text and isotherms in SI.
2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks
Activated powder of compound 2 · Powder · N2 adsorption at 77 K after activation; BET areas reported in main text and isotherms in SI.
2019 · Diverse π-π Stacking motifs modulate electrical conductivity in tetrathiafulvalene-based metal-organic frameworks
Activated powder of compound 3 · Powder · N2 adsorption at 77 K after activation; BET areas reported in main text and isotherms in SI.
2019 · Efficient MOF-Sensitized Solar Cells Featuring Solvothermally Grown [100]-Oriented Pillared Porphyrin Framework-11 Films on ZnO/FTO Surfaces
bulk PPF-11 crystals · Single Crystal · Activated by CH2Cl2 exchange and high vacuum at 120 C for 24 h; Quantachrome Autosorb iQ
2019 · Electrocatalytic Hydrogen Evolution from a Cobaloxime-Based Metal-Organic Framework Thin Film
Activated or solvent-exchanged UU-100(Co) powder · Powder · Activated material measured at 77 K after dynamic vacuum activation; partially collapsed structure.
2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors
Co0.5-Ni-MOF powder · Powder · BET surface area and BJH pore volume after vacuum degassing at 150 deg C for 4 h.
2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors
Co2-Ni-MOF powder · Powder · BET surface area and BJH pore volume after vacuum degassing at 150 deg C for 4 h.
2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors
Co5-Ni-MOF powder · Powder · BET surface area and BJH pore volume after vacuum degassing at 150 deg C for 4 h.
2019 · Fabrication of 3D Co-doped Ni-based MOF hierarchical micro-flowers as a high-performance electrode material for supercapacitors
Ni-MOF powder · Powder · BET surface area and BJH pore volume after vacuum degassing at 150 deg C for 4 h.
2019 · Field effect transistor based on proton conductive metal organic framework (CuBTC)
Im@CuBTC powder/crystals · Powder · Samples degassed in vacuum; N2 adsorption at 77 K.
2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction
(U+S)-CoFe-MOF hierarchical nanosheets · Nanosheet · BET/sorption comparison for U+S, U and S CoFe-MOFs.
2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction
(U+S)-Ni-MOF hierarchical nanosheets · Nanosheet · Generality examples for Ni-MOF, NiV-MOF and NiCoFe-MOF before/after solvothermal treatment.
2019 · Functionality in metal-organic framework minerals: Proton conductivity, stability and potential for polymorphism
ST1 crystals · Single Crystal · ST1, ST2 and ZH activated at 80 deg C under vacuum (10-3 Pa) overnight; water isotherms measured at 298 K.
2019 · General Synthesis of Mixed Semiconducting Metal Oxide Hollow Spheres with Tunable Compositions for Low-Temperature Chemiresistive Sensing
Ni-Co-Fe-Cu-Zn-TA-400 · Powder · Samples degassed under vacuum at 180 C for 12 h; BET calculated from adsorption branch over P/P0 = 0.05-0.25.
2019 · Guest-Assisted Proton Conduction in the Sulfonic Mesoporous MIL-101 MOF
H2SO4(1M)@MIL-101(Cr)-NH-(CH2)3SO3H powder · Powder · 77 K N2 adsorption; lower adsorbed amount after H2SO4 loading.
2019 · Guest-Assisted Proton Conduction in the Sulfonic Mesoporous MIL-101 MOF
MIL-101(Cr)-NO2 powder · Powder · 77 K N2 adsorption after outgassing at 423 K for 12 h under vacuum.
2019 · Guest-Assisted Proton Conduction in the Sulfonic Mesoporous MIL-101 MOF
MIL-101(Cr)-NH-(CH2)3SO3H powder · Powder · 77 K N2 adsorption after outgassing at 423 K for 12 h under vacuum.
2019 · Guest-Assisted Proton Conduction in the Sulfonic Mesoporous MIL-101 MOF
MIL-101(Cr)-NH-(CH2)3SO3H powder · Powder · IGA water vapour sorption at 298 K, water vapour pressure 5-90 RH%; sample dehydrated at 423 K under high vacuum.
2019 · Highly Conductive Bimetallic Ni-Fe Metal Organic Framework as a Novel Electrocatalyst for Water Oxidation
FeNi-DOBDC-3 · Nanosheet · Micromeritics ASAP 2020 automatic volumetric adsorption equipment; BET area, pore volume and mean pore size tabulated.
2019 · Highly Electroconductive Metal-Organic Framework: Tunable by Metal Ion Sorption Quantity
activated TMU-60 crystals · Powder · N2 adsorption/desorption at 77 K using Micromeritics ASAP 2020; BET method.
2019 · Highly Electroconductive Metal-Organic Framework: Tunable by Metal Ion Sorption Quantity
TMU-60-Cd powder · Powder · N2 adsorption/desorption isotherm of TMU-60-Cd shown in SI.
2019 · Integration of a (–Cu–S–) n plane in a metal–organic framework affords high electrical conductivity
As-synthesised brown rod-shaped crystals of compound 1 · Single Crystal · Micromeritics ASAP 2020; nitrogen gas adsorbent; 77 K.
2019 · Li + Ion-Conducting Sulfonate-Based Neutral Metal-Organic Framework
Activated pristine [Cu2(BPY)2(NDIDS)] MOF powder · Powder · Activated MOF measured by Quantachrome Autosorb iQ Gas Sorption Analyzer; isotherm at 300 K.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
PTCDA-LNMO powder · Powder · Characterisation instrument details reported for all Ni-Mn-MOF and LNMO samples.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
BCA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
BCA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
DTA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
DTA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
OBA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
OBA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
PTA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
PTA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
PTCDA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
PTCDA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
TCA-Ni-Mn-MOFs · Powder · Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor
2019 · Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands
TCA-LNMO powder · Powder · BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.
2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction
MIL-53(Fe) · Powder · N2 adsorbate at 77 K; BET surface area from SI Fig. S9 text.
2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction
Ni NCs · Powder · N2 adsorbate at 77 K; BET surface area from SI Fig. S9 text.
2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction
Ni NCs@MIL-53(NiFe), optimised Ni NCs:FeCl2 mass ratio 3 · Powder · N2 adsorbate at 77 K; BET surface area evaluated in P/P0 range 0.10-0.30.
2019 · Novel semiconducting iron–quinizarin metal–organic framework for application in supercapacitors*
activated FeQ material for BET · Powder · Activated by solvent exchange followed by heating in vacuo; nitrogen adsorption at -195.8 deg C
2019 · Novel semiconducting iron–quinizarin metal–organic framework for application in supercapacitors*
as-synthesised FeQ black precipitate / powder with small crystals · Powder · Nitrogen gas adsorptive at -195.8 deg C (liquid nitrogen temperature)
2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks
Co-CAT-1 bulk microcrystalline powder · Powder · Adsorption/desorption at 77.3 K; samples activated under high vacuum at 120 degC for at least 12 h; Type I(a) isotherms.
2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks
Cu-CAT-1 bulk microcrystalline powder · Powder · Adsorption/desorption at 77.3 K; samples activated under high vacuum at 120 degC for at least 12 h; Type I(a) isotherms.
2019 · Oriented Thin Films of Electroactive Triphenylene Catecholate-Based Two-Dimensional MetalOrganic Frameworks
Ni-CAT-1 bulk microcrystalline powder · Powder · Adsorption/desorption at 77.3 K; samples activated under high vacuum at 120 degC for at least 12 h; Type I(a) isotherms.
2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior
black polycrystalline PTC-Fe 2D MOF powder/crystals · Powder · Nitrogen sorption at 77 K; samples degassed at 100 C for at least 4 h; BET from relative pressure 0.05-0.20.
2018 · A Water-Stable Proton-Conductive Barium(II)-Organic Framework for Ammonia Sensing at High Humidity
Activated crystalline solids of MOF 1 · Powder · Activated crystalline solids at 25 deg C; NH3 uptake reported vs P/P0.
2018 · A Water-Stable Proton-Conductive Barium(II)-Organic Framework for Ammonia Sensing at High Humidity
Activated crystalline solids of MOF 1 · Powder · Activated crystalline solids; H2O uptake at 25 deg C / room temperature reported vs P/P0.
2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries
Cu-MOF · Powder · N2 adsorption/desorption at 77 K using Quantachrome Quabrasorb SI-3MP.
2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries
Cu/C · Powder · N2 adsorption/desorption at 77 K using Quantachrome Quabrasorb SI-3MP.
2018 · Bioinspired fiber-like porous Cu/N/C electrocatalyst facilitating electron transportation toward oxygen reaction for metal-air batteries
CuNC (MOF) · Powder · N2 adsorption/desorption at 77 K using Quantachrome Quabrasorb SI-3MP.
2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction
Ir/C (20 wt% Ir) · Electrode · BET surface area measured using ASAP2420-4MP analyser; isotherm in rendered Fig. S8.
2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction
Ni-Fe-O · Powder · BET surface area measured using ASAP2420-4MP analyser; isotherm in rendered Fig. S8.
2018 · Composition-dependent electrocatalytic activities of NiFe-based selenides for the oxygen evolution reaction
Ni-Fe-Se1:1-180 · Powder · BET surface area measured using ASAP2420-4MP analyser; isotherm in rendered Fig. S8.
2018 · Construction of hierarchical nickel cobalt selenide complex hollow spheres for pseudocapacitors with enhanced performance
hierarchical (Ni0.33Co0.67)Se2 CHSs · Powder · 3Flex Surface Characterization Analyzer; surface area and pore-size distribution
2018 · Development of a UiO-Type Thin Film Electrocatalysis Platform with Redox-Active Linkers
Zr(dcphOH-NDI) bulk microcrystalline powder · Powder · Micromeritics ASAP 2060; bulk powder activated under dynamic vacuum at 85 deg C before measurement.
2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework
H-Fe2O3-NSA microrods · Powder · Chemical composition and porosity of H-Fe2O3-NSA and D-Fe2O3-NSA; main text reports values from SI figures
2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework
Fe@GC microrods · Powder · TG in air 25-800 deg C at 10 deg C min-1; Raman with 515 nm laser at 25 deg C; BET with N2
2018 · Electrochemical properties of uniquely structured Fe2O3 and FeSe2/graphitic-carbon microrods synthesized by applying a metal-organic framework
MIL-88 microrods · Powder · MIL-88 precursor morphology, phase, and surface area; XRD and BET details primarily in SI figures referenced from main text
2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework
Bulk KxFe2(BDP)3 powder series · Powder · Samples activated under evacuation to 180 C; N2 adsorption at 77 K.
2018 · Encapsulating ionic liquids into POM-based MOFs to improve their conductivity for superior lithium storage
PMo10V2-ILs@MIL-100 crystals · Powder · MIL-100, PMo10V2@MIL-100 and PMo10V2-ILs@MIL-100 isotherms and pore-size distributions.
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 · Approximately 60 mg sample evacuated for 3 h at room temperature; nitrogen isotherms recorded at 77 K; BET area calculated from relative pressure 0.01 to 0.1.
2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74
pH 11 NH4OH-treated Co-MOF-74 crystals before electrode configuration · Single Crystal · N2 isotherms at 77 K before and after exposure to 95% RH water vapour at 90 deg C for 24 h.
2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74
pH 3 H2SO4-treated Co-MOF-74 crystals before electrode configuration · Single Crystal · N2 isotherms at 77 K before and after exposure to 95% RH water vapour at 90 deg C for 24 h.
2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74
pH 5 H2SO4-treated Co-MOF-74 crystals before electrode configuration · Single Crystal · N2 isotherms at 77 K before and after exposure to 95% RH water vapour at 90 deg C for 24 h.
2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74
pH 7 H2O-coordinating Co-MOF-74 crystals before electrode configuration · Single Crystal · N2 isotherms at 77 K before and after exposure to 95% RH water vapour at 90 deg C for 24 h.
2018 · High Proton Mobility with High Directionality in Isolated Channels of MOF-74
pH 9 NH4OH-treated Co-MOF-74 crystals before electrode configuration · Single Crystal · N2 isotherms at 77 K before and after exposure to 95% RH water vapour at 90 deg C for 24 h.
2018 · High-mobility band-like charge transport in a semiconducting two-dimensional metal–organic framework
Large-area free-standing Fe3(THT)2(NH4)3 multilayer film · Thin Film · N2 sorption measured at 77 K; samples degassed at 120 C for at least 4 h.
2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests
spin-coated Mn-AIM-NiCB@NU-1000 thin film · Thin Film · Characterisation of Mn-AIM-NU-1000 and Mn-AIM-NiCB@NU-1000 after AIM installation.
2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests
NiCB@NU-1000 pellet · Pellet · Nitrogen sorption comparing NU-1000, NiCB@NU-1000, and their pressed pellets.
2018 · Increased Electrical Conductivity in a Mesoporous Metal-Organic Framework Featuring Metallacarboranes Guests
NiCB@NU-1000 powder · Powder · Nitrogen sorption comparing NU-1000 and NiCB@NU-1000.
2018 · Nanopore-induced host-guest charge transfer phenomena in a metal-organic framework
As-prepared Mn-MOF crystals · Single Crystal · BEDT-TTF and TMTSF incorporation attempts compared with successful TTF/TMPDA loading.
2018 · Novel Topology in Semiconducting Tetrathiafulvalene Lanthanide Metal-Organic Frameworks
activated Lu6(TTFTB)5 powder for N2 adsorption · Powder · Activation at 220 C under dynamic vacuum; main text reports BET surface area under these conditions.
2018 · Novel Topology in Semiconducting Tetrathiafulvalene Lanthanide Metal-Organic Frameworks
activated Yb6(TTFTB)5 powder for N2 adsorption · Powder · Sample activated at 220 C under dynamic vacuum until outgas rate <2 mTorr/min; N2 isotherm measured at 77 K using UHP nitrogen.
2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts
2D-MCo3O4-NCNAs-15-900 · Nanosheet · N2 adsorption/desorption at 77 K after degassing in N2 at 200 C for 16 h.
2018 · Quantum Effects Allow the Construction of Two-Dimensional Co3O4-Embedded Nitrogen-Doped Porous Carbon Nanosheet Arrays from Bimetallic MOFs as Bifunctional Oxygen Electrocatalysts
Co3O4-NC-5-900 · Powder · Porosity of Co3O4-NC-5-900 comparison sample.
2018 · Stabilization of Hexaaminobenzene in a 2D Conductive Metal-Organic Framework for High Power Sodium Storage
Co-HAB-D optimised mixed-solvent product · Powder · Chemical stability in H2O, 0.1 M HCl, saturated 12 M NH4OH and 0.1 M KOH; electrolyte soaking in LiPF6 EC/DEC and NaPF6 DEGDME for 24 h at RT; PXRD and N2 sorption checked after washing/activation.
2018 · Stabilization of Hexaaminobenzene in a 2D Conductive Metal-Organic Framework for High Power Sodium Storage
Co-HAB-D optimised mixed-solvent product · Powder · Gas adsorption measured using Autosorb IQ2; N2 sorption at 77 K for stability tests; Co-HAB-D isotherm and pore size distribution reported.
2018 · Stabilization of Hexaaminobenzene in a 2D Conductive Metal-Organic Framework for High Power Sodium Storage
Co-HAB-D optimised mixed-solvent product · Powder · As-synthesised samples degassed on Autosorb IQ2 for 2 h at 80, 150, 200, 250 and 300 C; N2 sorption at 77 K and PXRD used to confirm crystallinity.
2018 · Synthesis and Electric Properties of a Two-Dimensional Metal-Organic Framework Based on Phthalocyanine
as-synthesised/activated Cu-CuPc black powder · Powder · 77 K; powder activated under vacuum at 80 C overnight
2018 · Synthetic Routes for a 2D Semiconductive Copper Hexahydroxybenzene Metal-Organic Framework
Cu-HHB H2O 60 C post-treated powder · Powder · Gas adsorption measured using Autosorb IQ2; post-treated Cu-HHB samples compared after water washing at 60 C and 100 C.
2018 · Synthetic Routes for a 2D Semiconductive Copper Hexahydroxybenzene Metal-Organic Framework
Cu-THQ H2O 60 C post-treated powder · Powder · Gas adsorption measured using Autosorb IQ2; Cu-THQ pristine, H2O @ 60 C and H2O @ 100 C treatments compared.
2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry
compound 1a desolvated activated framework · Powder · Micromeritics ASAP 2020; activated under dynamic vacuum to 393 K, N2 adsorption at 77 K; averaged over two samples
2017 · A Microporous and Naturally Nanostructured Thermoelectric Metal-Organic Framework with Ultralow Thermal Conductivity
desolvated Ni3(HITP)2 powder · Powder · Sample heated to 80 C for 26 h, then N2 adsorption measured in liquid nitrogen bath at 77 K.
2017 · A stable porphyrinic metal-organic framework pore-functionalized by high-density carboxylic groups for proton conduction
Activated/desolvated BUT-83 · Powder · N2 adsorption/desorption at 77 K on desolvated/activated BUT-83, with post-impedance-test comparison.
2017 · A stable porphyrinic metal-organic framework pore-functionalized by high-density carboxylic groups for proton conduction
Activated/desolvated BUT-83 · Powder · Water vapour sorption of evacuated BUT-83 at 298 K.
2017 · Carbon-incorporated Janus-type Ni2P/Ni hollow spheres for high performance hybrid supercapacitors
NP-150 · Powder · Specific surface area and BJH pore size distribution measured at liquid nitrogen temperature using Micromeritics ASAP 2100.
2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode
NMOF-1 bulk nanosheets/powder · Nanosheet · Quantachrome Quadrasorb-SI; N2 at 77 K and CO2 at 195 K; samples activated at 170 C under 1 x 10^-1 Pa for about 12 h
2017 · Colossal Increase in Electric Current and High Rectification Ratio in a Photoconducting, Self-Cleaning, and Luminescent Schottky Barrier NMOF Diode
NMOF-1 bulk nanosheets/powder · Nanosheet · BELSORP AQUA 3 at 298 K after activation at 170 C for about 12 h under vacuum
2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors
Cu-CAT crystallite powder · Powder · N2 sorption at 77 K after methanol reflux overnight three times and vacuum pretreatment at 100 deg C for 10 h; BET and NLDFT pore-size analysis.
2017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors
Cu-CAT crystallite powder · Powder · Water vapour sorption at room temperature; saturation pressure P0 = 3.14 kPa in SI caption.
2017 · Controllable proton-conducting pathways: Via situating polyoxometalates in targeting pores of a metal-organic framework
3 · Powder · Nitrogen sorption after dehydration under vacuum at 393 K for 12 h.
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Co3HHTP2 powder · Powder · N2 adsorption BET; fitting range 0 to 0.3 P/Po stated in supplementary-materials caption
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Co3HHTP2 powder · Powder · Harkins and Jura thickness equation; fitted t-plot analysis
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Co3HHTP2/graphite blended pellet · Pellet · BET adsorption analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Co3HHTP2/graphite blended pellet · Pellet · Harkins and Jura thickness equation; fitted t-plot analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Cu3HHTP2 powder · Powder · N2 adsorption BET; fitting range 0 to 0.3 P/Po stated in supplementary-materials caption
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Cu3HHTP2 powder · Powder · Harkins and Jura thickness equation; fitted t-plot analysis
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Cu3HHTP2/graphite blended pellet · Pellet · BET adsorption analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Cu3HHTP2/graphite blended pellet · Pellet · Harkins and Jura thickness equation; fitted t-plot analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Fe3HHTP2 powder · Powder · N2 adsorption BET; fitting range 0 to 0.3 P/Po stated in supplementary-materials caption
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Fe3HHTP2 powder · Powder · Harkins and Jura thickness equation; fitted t-plot analysis
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Fe3HHTP2/graphite blended pellet · Pellet · BET adsorption analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Fe3HHTP2/graphite blended pellet · Pellet · Harkins and Jura thickness equation; fitted t-plot analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Ni3HHTP2 powder · Powder · N2 adsorption BET; fitting range 0 to 0.3 P/Po stated in supplementary-materials caption
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
pure Ni3HHTP2 powder · Powder · Harkins and Jura thickness equation; fitted t-plot analysis
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Ni3HHTP2/graphite blended pellet · Pellet · BET adsorption analysis for MOF/graphite blend
2017 · Drawing sensors with ball-milled blends of metal-organic frameworks and graphite
Ni3HHTP2/graphite blended pellet · Pellet · Harkins and Jura thickness equation; fitted t-plot analysis for MOF/graphite blend
2017 · Fabrication of Hierarchical Porous Metal-Organic Framework Electrode for Aqueous Asymmetric Supercapacitor
HP-UiO-66 powder · Powder · TriStar II 3020; nitrogen adsorption/desorption isotherms at 77 K.
2017 · Fabrication of Hierarchical Porous Metal-Organic Framework Electrode for Aqueous Asymmetric Supercapacitor
Bare UiO-66 powder · Powder · TriStar II 3020; nitrogen adsorption/desorption isotherms at 77 K.
2017 · From zinc-cyanide hybrid coordination polymers to hierarchical yolk-shell structures for high-performance and ultra-stable lithium-ion batteries
YC-ZnO microspheres · Powder · BET surface area and pore size distribution of YC-ZnO.
2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers
Cr-BTC xerogel pressed pellet · Pellet · N2 gas adsorption-desorption isotherm recorded at 77 K.
2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers
Fe-BTC xerogel pressed pellet · Pellet · N2 gas adsorption-desorption isotherm recorded at 77 K.
2017 · Giant Enhancement of Carrier Mobility in Bimetallic Coordination Polymers
Fe-BTC-Cr 1:1 xerogel pressed pellet · Pellet · N2 gas adsorption-desorption isotherms recorded at 77 K.
2017 · High-κ Samarium-Based Metal-Organic Framework for Gate Dielectric Applications
compound 1 powder / bulk sample · Powder · N2 uptake reported at 1 bar and 298 K; SI Figure S8 shows adsorption/desorption versus pressure.
2017 · Hydrolytically Stable Luminescent Cationic Metal Organic Framework for Highly Sensitive and Selective Sensing of Chromate Anions in Natural Water Systems
LiCl/methanol-treated and outgassed bulk sample of 1 · Powder · Gas adsorption measurements at 77 K in liquid nitrogen; pressure range 0 to 760 Torr after LiCl/methanol treatment and 80 C outgas.
2017 · Is iron unique in promoting electrical conductivity in MOFs?
pressed pellet of Fe2Cl2(BTDD)(DMF)2 · Pellet · Sample heated to 100 deg C until outgas rate less than 2 mtorr/min; N2 adsorption measured at 77 K.
2017 · Is iron unique in promoting electrical conductivity in MOFs?
pressed pellet of Fe2(DOBDC)(DMF)2 · Pellet · Sample heated to 100 deg C until outgas rate less than 2 mtorr/min; N2 adsorption measured at 77 K.
2017 · Is iron unique in promoting electrical conductivity in MOFs?
pressed pellet of Fe2(DSBDC)(DMF)2 · Pellet · Sample heated to 100 deg C until outgas rate less than 2 mtorr/min; N2 adsorption measured at 77 K.
2017 · Is iron unique in promoting electrical conductivity in MOFs?
pressed pellet of Fe(1,2,3-triazolate)2 · Pellet · Sample heated to 100 deg C until outgas rate less than 2 mtorr/min; N2 adsorption measured at 77 K.
2017 · Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation
Activated DSNDI-based MOF-74 powder · Powder · Activated MeOH-exchanged MOF powder, 40 mg, measured at 77 K after high-vacuum outgassing.
2017 · Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation
TTF-doped DSNDI-based MOF-74 powder · Powder · TTF-doped MOF-74 compared with pristine activated sample at 77 K.
2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors
Co/Ni-MOF NAFLs · Nanosheet · BET surface area and pore structure calculated using Micromeritics ASAP 2020.
2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors
Ni-MOF powder / NAFL control · Nanosheet · BET surface area and pore structure calculated using Micromeritics ASAP 2020.
2017 · Mixed-metallic MOF based electrode materials for high performance hybrid supercapacitors
Zn/Ni-MOF NAFLs · Nanosheet · BET surface area and pore structure calculated using Micromeritics ASAP 2020.
2017 · Porous field-effect transistors based on a semiconductive metal-organic framework
Ni3(HITP)2 powder acquired from membrane · Powder · Gas adsorption measured on ASAP 2020; N2 sorption isotherms measured at 77 K on powder acquired from membrane.
2017 · Shielding against Unfolding by Embedding Enzymes in Metal-Organic Frameworks via a de Novo Approach
CAT@ZIF-90 · Powder · Samples degassed at 110 deg C for 12 h before measurement; P/P0 = 0.06-0.20 used for surface-area calculation.
2017 · Shielding against Unfolding by Embedding Enzymes in Metal-Organic Frameworks via a de Novo Approach
ZIF-90 microcrystals · Powder · Samples degassed at 110 deg C for 12 h before measurement; P/P0 = 0.06-0.20 used for surface-area calculation.
2017 · Synthesis of ordered carbonaceous frameworks from organic crystals
Ni2-CPDPy873(1) · Powder · N2 adsorption at 77 K; CO2 adsorption at 298 K. BET surface area from P/P0 = 0.05-0.35; pore volumes from P/P0 = 0.96 and Dubinin-Radushkevich equation.
2017 · TCNQ-doped Cu-metal organic framework as a novel conductometric immunosensing platform for the quantification of prostate cancer antigen
activated Cu3(BTC)2 powder · Powder · Activated Cu3(BTC)2 powder BET surface area.
2017 · TCNQ-doped Cu-metal organic framework as a novel conductometric immunosensing platform for the quantification of prostate cancer antigen
TCNQ-Cu3(BTC)2 sorption sample · Powder · TCNQ-Cu3(BTC)2 BET surface area.
2017 · Ultrathin metal-organic framework array for efficient electrocatalytic water splitting
NiFe-MOF/NF ultrathin nanosheet array electrode · Electrode · BJH pore size distribution and BET surface area from N2 sorption.
2016 · Electrical conductivity and electroluminescence of a new anthracene-based metal-organic framework with π-conjugated zigzag chains
Activated NNU-27 after solvent exchange · Powder · Activated by solvent exchange; gas identity and detailed isotherm conditions not specified in the text layer.
2016 · Electrochemical oxygen reduction catalysed by Ni3 (hexaiminotriphenylene)2
Ni3(HITP)2 black powder byproduct/bulk material · Powder · Nitrogen adsorption isotherm at 77 K; BET range selected using Rouquerol checks.
2016 · Facile formation of a nanostructured NiP2@C material for advanced lithium-ion battery anode using adsorption property of metal-organic framework
as-synthesised nanostructured NiP2@C nanocomposite · Powder · as-synthesised NiP2@C powder; N2 sorption at 77 K
2016 · Hollow Cobalt-Based Bimetallic Sulfide Polyhedra for Efficient All-pH-Value Electrochemical and Photocatalytic Hydrogen Evolution
hollow Zn0.30Co2.70S4 · Powder · N2 adsorption/desorption isotherm measurements at -196 °C on Micromeritics TriStar 3000.
2016 · Modulating the electrical conductivity of metal-organic framework films with intercalated guest π-systems
Activated BMOF powder for CO2 sorption · Powder · CO2 adsorption capacity at 273 K and 1 bar
2016 · Proton Transport in a Highly Conductive Porous Zirconium-Based Metal-Organic Framework: Molecular Insight
UiO-66(Zr)-(CO2D)2 characterisation powder · Powder · BelsorpII max BEL apparatus; sample degassed at 373 K for 6 h; BET analysis.
2016 · Proton Transport in a Highly Conductive Porous Zirconium-Based Metal-Organic Framework: Molecular Insight
UiO-66(Zr)-(CO2H)2 pressed pellet for impedance · Pellet · 303 K; reproduced from prior ref. 6 in SI.
2015 · A porous proton-relaying metal-organic framework material that accelerates electrochemical hydrogen evolution
bulk NU-1000 · Powder · Bulk NU-1000 samples; reported void volume and pore/channel dimensions.
2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications
TMA-Co(II) powder · Powder · TriStar II Micromeritics; samples kept at 50 deg C for 3 days and degassed at 80 deg C for 8 h before liquid-N2 adsorption-desorption.
2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications
TMA-Cu(II) powder · Powder · TriStar II Micromeritics; samples kept at 50 deg C for 3 days and degassed at 80 deg C for 8 h before liquid-N2 adsorption-desorption.
2015 · Benign preparation of metal–organic frameworks of trimesic acid and Cu, Co or Ni for potential sensor applications
TMA-Ni(II) powder · Powder · TriStar II Micromeritics; samples kept at 50 deg C for 3 days and degassed at 80 deg C for 8 h before liquid-N2 adsorption-desorption.
2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks
desolvated Cd2(TTFTB) · Powder · Micromeritics ASAP 2020; sample outgassed under vacuum until outgas rate <2 mtorr/min; N2 isotherm measured at 77 K.
2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks
desolvated Co2(TTFTB) · Powder · Micromeritics ASAP 2020; sample outgassed under vacuum until outgas rate <2 mtorr/min; N2 isotherm measured at 77 K.
2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks
desolvated Mn2(TTFTB) · Powder · Micromeritics ASAP 2020; sample outgassed under vacuum until outgas rate <2 mtorr/min; N2 isotherm measured at 77 K.
2015 · Cation-dependent intrinsic electrical conductivity in isostructural tetrathiafulvalene-based microporous metal-organic frameworks
desolvated Zn2(TTFTB) reference sample · Powder · Micromeritics ASAP 2020; sample outgassed under vacuum until outgas rate <2 mtorr/min; N2 isotherm measured at 77 K.
2015 · Co-Ca Phosphonate Showing Humidity-Sensitive Single Crystal to Single Crystal Structural Transformation and Tunable Proton Conduction Properties
CoCa.nH2O powder for water adsorption/desorption · Powder · Activated CoCa.nH2O measured at 15, 25 and 35 C; 25 C isotherm described in detail over 0-97% RH.
2015 · Confinement of single polysilane chains in coordination nanospaces
1a-PMPrS powder composite, 30 wt percent PMPrS · Powder · Oxygen adsorption at 298 K for 1-PMPrS.
2015 · Confinement of single polysilane chains in coordination nanospaces
pristine host 1a powder · Powder · N2 adsorption at 77 K on BELSORP-mini; sample treated under reduced pressure (<10^-2 Pa) at 373 K for 5 h before measurement.
2015 · Confinement of single polysilane chains in coordination nanospaces
1a-PMPrS powder composite, 30 wt percent PMPrS · Powder · N2 adsorption at 77 K on BELSORP-mini; sample treated under reduced pressure (<10^-2 Pa) at 373 K for 5 h before measurement.
2015 · Confinement of single polysilane chains in coordination nanospaces
pristine host 1b powder · Powder · N2 adsorption at 77 K on BELSORP-mini; sample treated under reduced pressure (<10^-2 Pa) at 373 K for 5 h before measurement.
2015 · Confinement of single polysilane chains in coordination nanospaces
1b-PMPrS powder composite, 30 wt percent PMPrS · Powder · N2 adsorption at 77 K on BELSORP-mini; sample treated under reduced pressure (<10^-2 Pa) at 373 K for 5 h before measurement.
2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework
Microcrystalline/crystalline powder of 1 · Powder · Solid samples heated under vacuum at 150 C for 1 h before adsorption measurements.
2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)
Fe2(DOBDC)(DMF)2 · Pellet · Outgassed at 100 degC; N2 adsorption at 77 K.
2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)
Fe2(DSBDC)(DMF)2 · Pellet · Outgassed at 100 degC until outgas rate <2 mtorr/min; N2 adsorption at 77 K.
2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)
Mn2(DOBDC)(DMF)2 · Pellet · Outgassed at 100 degC; N2 adsorption at 77 K.
2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)
Mn2(DSBDC)(DMF)2 · Pellet · Outgassed at 100 degC; N2 adsorption at 77 K.
2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks
Blank MIL-53(Al), Basolite A100 · Powder · Blank MIL-53 and AgNCs@MIL-53 crystals prepared using 0.5 M AgNO3
2015 · Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks
Blank Rb-CD-MOF single crystals · Single Crystal · Blank Rb-CD-MOF and AgNC@Rb-CD-MOF prepared with 2, 5 and 10 mM AgNO3
2014 · A europium(III) based metal-organic framework: Bifunctional properties related to sensing and electronic conductivity
Activated/outgassed EuL · Powder · Activated EuL measured at 77 K on ASAP 2020 and Autosorb MP-1 apparatuses.
2014 · Computational exploration of newly synthesized zirconium metal-organic frameworks UiO-66, -67, -68 and analogues
Zr-UiO-66 hydroxylated perfect-crystal model · Model · Literature value from ref. 8 quoted as context; not measured in this computational paper.
2014 · Computational exploration of newly synthesized zirconium metal-organic frameworks UiO-66, -67, -68 and analogues
Zr-UiO-67 hydroxylated perfect-crystal model · Model · Literature value from ref. 8 quoted as context; not measured in this computational paper.
2014 · Computational exploration of newly synthesized zirconium metal-organic frameworks UiO-66, -67, -68 and analogues
Zr-UiO-68 hydroxylated perfect-crystal model · Model · Literature value from ref. 8 quoted as context; not measured in this computational paper.
2014 · Control of crystalline proton-conducting pathways by water-induced transformations of hydrogen-bonding networks in a metal-organic framework
dehydrated 1 for sorption measurements · Powder · N2 adsorption/desorption at 77 K; sample 1 after dehydration
2014 · Control of crystalline proton-conducting pathways by water-induced transformations of hydrogen-bonding networks in a metal-organic framework
dehydrated 1 for sorption measurements · Powder · sample dehydrated at 80 °C overnight under vacuum; water vapour adsorption/desorption at 25 °C; P/P0 maps to RH
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
NBu4-ZIF-8-OH powder · Powder · CO2 adsorption at 298 K compared NBu4-ZIF-8 and NBu4-ZIF-8-OH.
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
NBu4-ZIF-8 powder · Powder · 77 K; samples dried at room temperature under vacuum overnight.
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
NBu4-ZIF-8-OH powder · Powder · 77 K; NBu4-ZIF-8-OH transferred to measurement tube inside glovebox to avoid air exposure.
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
ZIF-8 powder · Powder · 77 K; samples dried at room temperature under vacuum overnight.
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
NBu4-ZIF-8-OH powder · Powder · 298 K water vapour adsorption/desorption.
2014 · Design and synthesis of hydroxide ion-conductive metal-organic frameworks based on salt inclusion
ZIF-8 powder · Powder · 298 K water vapour adsorption/desorption.
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(CH3COOH)2 (DIW) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(CH3COOH)2 (EtOH) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-CuCl2 (DIW) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(NO3)2 (DIW) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(NO3)2 (EtOH) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(SO4)2 (DIW) · Powder · MOF powder porosity; conditions not specified in text
2014 · Facile synthesis and characterization of trimesic acid-Cu based metal organic frameworks
TMA-Cu(SO4)2 (EtOH) · Powder · MOF powder porosity; conditions not specified in text
2014 · Immobilization of N-(3-aminopropyl)-imidazole through MOFs in proton conductive membrane for elevated temperature anhydrous applications
activated Fe-MIL-101-NH2 / pure MOFs · Powder · Nitrogen adsorption at 77 K; BET range P/P0 0.05-0.25; pore volume from uptake at P/P0=0.5; pretreatment 473 K vacuum 3 h
2014 · Pd uptake and H2S sensing by an amphoteric metal-organic framework with a soft core and rigid side arms
BFMOF-1a desolvated/solvent-exchanged crystals · Single Crystal · Outgassed at 0.03 torr with 2 C/min ramp to 110 C and held 12 h; CO2 isotherms at 273 K; N2 sorption at 77 K.
2014 · Solid-state structural transformation doubly triggered by reaction temperature and time in 3D metal-organic frameworks: Great enhancement of stability and gas adsorption
activated IFMC-69 for gas sorption · Powder · CO2 and N2 adsorption measured at 273 K and 298 K; table reports saturation uptakes and unit-cell loading.
2014 · Solid-state structural transformation doubly triggered by reaction temperature and time in 3D metal-organic frameworks: Great enhancement of stability and gas adsorption
activated IFMC-69 for gas sorption · Powder · H2 sorption at 77 K and 87 K.
2014 · Solid-state structural transformation doubly triggered by reaction temperature and time in 3D metal-organic frameworks: Great enhancement of stability and gas adsorption
activated IFMC-69 for gas sorption · Powder · Activated IFMC-68 and IFMC-69 measured at 77 K and 1 atm.
2014 · Tunable electrical conductivity in metal-organic framework thin-film devices
TCNQ@Cu3(BTC)2 powder · Powder · Activated Cu3(BTC)2 powder before and after TCNQ infiltration and air drying
2013 · Bi-porous metal-organic framework with hydrophilic and hydrophobic channels: Selective gas sorption and reversible iodine uptake studies
guest-free activated compound 1' · Pellet · CO2, CH4, N2 and H2 adsorption at 273 K; CO2 heat of sorption calculated from 273 K and 298 K data.
2013 · Bi-porous metal-organic framework with hydrophilic and hydrophobic channels: Selective gas sorption and reversible iodine uptake studies
guest-free activated compound 1' · Pellet · CO2 at 195 K; CH4 at 195 K; N2 and H2 at 77 K; gases 99.999% purity; sample degassed under vacuum before measurement.
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 powder · Powder · Micromeritics ASAP 2020; sample heated to 150 deg C until outgas rate <2 mtorr/min; N2 adsorption at 77 K.
2012 · High charge mobility in a tetrathiafulvalene-based microporous metal-organic framework
Desolvated/activated compound 1 powder · Powder · Micromeritics ASAP 2020; sample heated to 200 deg C under vacuum for 12 h before 77 K N2 isotherm; ultrahigh-purity N2 and He used.
2012 · High performance metal–organic-framework coatings obtained via thermal gradient synthesis
Separated crystalline HKUST-1 top layer · Powder · Quantachrome Nova at 77 K; samples degassed for 24 h at 120 deg C in vacuo prior to measurement.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-1 (Mg) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-2 (Mn) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-3 (Fe) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-4 (Co) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-5 (Cu) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2012 · Porous, conductive metal-triazolates and their structural elucidation by the charge-flipping method
MET-6 (Zn) microcrystalline powder · Powder · Autosorb-1 analyser; UHP gases; BET areas from N2 adsorption branch with increasing v(P0-P) region; Ar isotherms used to compare low-pressure pore filling.
2010 · Conductivity, doping, and redox chemistry of a microporous dithiolene-based metal-organic framework
Desolvated Cu[Ni(pdt)2] powder · Powder · N2 adsorption collected at 77 K on desolvated Cu[Ni(pdt)2].
No mapped measurement matches these filters.
These are the exact source-preserving method strings consolidated by this technique group.
| Raw method label | Mapped measurements |
|---|---|
| N2 adsorption-desorption; BET, t-plot and BJH analyses | 17 |
| N2 adsorption isotherm | 15 |
| N2 adsorption isotherm and BET surface area | 13 |
| N2 adsorption/desorption BET | 13 |
| N2 adsorption-desorption; BET analysis | 11 |
| N2 adsorption BET surface area | 10 |
| N2 adsorption-desorption | 9 |
| Combined PXRD/FWHM crystallite-size analysis, N2 adsorption BET, UV-vis-NIR Tauc gap and PESA HOMO/LUMO summary | 9 |
| N2 adsorption isotherm and BET analysis | 8 |
| N2 Brunauer-Emmett-Teller surface-area analysis | 8 |
| t-plot external surface area analysis | 8 |
| N2 adsorption/BET | 8 |
| CO2 adsorption isotherm | 8 |
| N2 adsorption-desorption; BET and BJH analysis | 8 |
| N2 sorption; BET surface area; t-method micropore volume; total pore volume at P/P0 = 0.99 | 8 |
| N2 adsorption/desorption and BET analysis | 7 |
| N2 adsorption-desorption BET | 7 |
| BET surface area and pore analysis | 7 |
| N2 adsorption isotherm; BET surface area | 6 |
| N2 adsorption-desorption isotherm | 6 |
| N2 adsorption/desorption isotherm | 6 |
| N2 adsorption-desorption isotherm; BET | 6 |
| N2 adsorption-desorption BET/BJH | 6 |
| N2 adsorption/desorption | 6 |
| N2 adsorption-desorption / BET | 6 |
| Volumetric N2 adsorption at 77 K and Ar adsorption at 87 K; BET/Langmuir and DR pore-volume analysis | 6 |
| N2 adsorption/desorption isotherm; BET surface area; pore-size distribution | 6 |
| N2 adsorption/desorption; BET; BJH pore volume; tap density | 6 |
| BET surface area and pore diameter distribution | 6 |
| N2 adsorption isotherm and BET fit | 5 |
| N2 sorption; BET surface area | 5 |
| N2 adsorption isotherm and BET surface-area analysis | 5 |
| N2 adsorption-desorption and BET analysis | 5 |
| N2 sorption isotherm and BET surface area | 5 |
| nitrogen physisorption, BET surface area, QSDFT pore size distribution | 5 |
| N2 sorption / BET surface area | 5 |
| N2 adsorption/desorption isotherms and BET surface area | 5 |
| N2 adsorption-desorption; BET surface area | 5 |
| Nitrogen adsorption-desorption | 4 |
| N2 adsorption and BET surface area | 4 |
| N2 adsorption-desorption isotherm; BET surface area | 4 |
| N2 sorption isotherm and DFT pore-size distribution | 4 |
| BET nitrogen adsorption-desorption | 4 |
| N2 adsorption/desorption isotherm and BET analysis | 4 |
| N2 sorption, BET surface area and NLDFT/QSDFT pore-size analysis | 4 |
| N2 adsorption/desorption, BET | 4 |
| N2 sorption BET surface area | 4 |
| N2 adsorption/desorption, BET surface area | 4 |
| N2 adsorption-desorption; BET/BJH | 4 |
| Water vapour adsorption/desorption isotherm | 4 |
| N2 physisorption at 77 K | 4 |
| N2 adsorption/desorption at 77 K with BET and H-K pore-size analysis | 4 |
| N2 adsorption BET | 4 |
| Brunauer-Emmett-Teller N2 adsorption-desorption | 4 |
| N2 sorption at 77 K and calculated solvent-accessible void analysis | 4 |
| Nitrogen adsorption/desorption; BET surface area | 4 |
| N2 adsorption-desorption, BET and NLDFT | 4 |
| H2O vapour sorption isotherm | 4 |
| Krypton sorption, BET analysis | 4 |
| N2 adsorption/desorption; BET and DFT pore model | 4 |
| N2 adsorption-desorption, BET analysis | 3 |
| N2 sorption isotherm and Brunauer-Emmett-Teller surface area. | 3 |
| N2 adsorption/desorption isotherms; BETSI/Rouquerol BET analysis | 3 |
| Nitrogen adsorption isotherm with BET analysis | 3 |
| N2 adsorption/desorption isotherm and BET surface area | 3 |
| N2 sorption isotherm and BET analysis | 3 |
| N2 adsorption-desorption and BET surface area | 3 |
| N2 adsorption/desorption and BET/NLDFT analysis | 3 |
| N2 adsorption/desorption and DFT pore-size analysis | 3 |
| N2 physisorption; BET; QSDFT pore-size distribution | 3 |
| N2 adsorption/BET analysis | 3 |
| N2 adsorption isotherm at 77 K using Micromeritics ASAP 2020; BET theory used for surface area. | 3 |
| Langmuir surface area, cited experimental literature value | 3 |
| N2 adsorption/desorption isotherm and BET/DFT pore analysis | 3 |
| N2 adsorption/desorption and BET surface area | 3 |
| N2 adsorption/desorption; BET | 3 |
| N2/CO2 adsorption, BET, NLDFT/BJH | 3 |
| N2 sorption isotherm / BET / BJH | 3 |
| N2 adsorption-desorption; multipoint BET and BJH | 3 |
| N2 sorption / BET analysis | 3 |
| N2 adsorption/desorption; BET and BJH | 3 |
| N2 adsorption/desorption isotherm; BET surface area | 3 |
| BET surface area | 3 |
| N2 sorption BET and XRF | 3 |
| N2 adsorption-desorption, BJH, BET | 3 |
| N2 adsorption-desorption, BET and BJH | 3 |
| N2 adsorption-desorption at 77 K; BET and DFT pore analysis | 3 |
| N2 adsorption-desorption; BET surface area after chronoamperometric test | 3 |
| N2 adsorption-desorption/BET/NLDFT | 3 |
| N2 sorption/BET/NLDFT | 3 |
| N2 adsorption-desorption, BET/NLDFT | 3 |
| BET nitrogen adsorption | 3 |
| N2 sorption and BET | 3 |
| 77 K N2 sorption, BET surface area, QSDFT pore-size analysis | 3 |
| N2 adsorption-desorption / BET analysis | 3 |
| N2 adsorption-desorption; BET surface area and pore-size distribution | 3 |
| N2 adsorption-desorption; BET | 3 |
| N2 adsorption-desorption and NLDFT pore-size analysis | 3 |
| CO2 adsorption isotherms | 3 |
| N2 adsorption isotherm and BJH pore-size distribution | 3 |
| Dynamic vapour sorption (DVS) | 3 |
| N2 adsorption/desorption; BET on ASAP 2020M | 3 |
| N2 adsorption-desorption; BET method, Quantachrome Autosorb-iQ | 3 |
| N2 adsorption-desorption; BET surface area; DFT pore width distribution | 2 |
| N2 adsorption-desorption / BET / BJH | 2 |
| N2 adsorption-desorption, BET surface-area analysis. | 2 |
| N2 adsorption-desorption isotherm; BET analysis | 2 |
| N2 and CO2 gas sorption | 2 |
| CO2 adsorption isotherm; BET | 2 |
| N2 adsorption/BET surface area | 2 |
| argon sorption BET surface area | 2 |
| N2 adsorption-desorption; BET and BJH/KJS pore-size analysis | 2 |
| N2 adsorption/desorption BET analysis | 2 |
| N2 adsorption-desorption isotherm and multipoint BET surface area. | 2 |
| N2 adsorption/desorption, BET and BJH | 2 |
| Nitrogen adsorption/desorption; BET analysis | 2 |
| N2 adsorption-desorption and pore-size distribution | 2 |
| Nitrogen adsorption-desorption isotherms (ASAP 2010C) | 2 |
| N2 sorption; BET surface-area analysis | 2 |
| N2 adsorption-desorption, ASAP 2020, BET analysis | 2 |
| N2 adsorption-desorption at 77 K; BET, Langmuir and t-plot analysis | 2 |
| Water adsorption isotherm | 2 |
| N2 adsorption-desorption isotherms | 2 |
| CO2 adsorption/desorption isotherm and surface area | 2 |
| N2 sorption/BET and DFT pore-size analysis | 2 |
| N2 sorption and BET analysis | 2 |
| water vapour adsorption isotherm / water BET calculation | 2 |
| N2 adsorption-desorption; BET, T-plot and NLDFT analysis | 2 |
| N2 adsorption-desorption at 77 K; BET surface area | 2 |
| N2 adsorption/desorption; BET and NL-DFT | 2 |
| N2 adsorption-desorption BET (Quantachrome Instruments version 5.0) | 2 |
| N2 adsorption-desorption; BET and t-plot | 2 |
| N2 adsorption/desorption; BET specific surface area; DFT pore size distribution | 2 |
| N2 adsorption-desorption at 77 K; DFT pore-size distribution | 2 |
| N2 physisorption/BET surface area | 2 |
| N2 adsorption-desorption isotherm and BET analysis | 2 |
| N2 adsorption-desorption isotherms / BET surface area | 2 |
| N2 sorption isotherm and BET surface-area analysis | 2 |
| N2 adsorption-desorption isotherm and DFT pore-size analysis | 2 |
| N2 adsorption-desorption isotherm; BET surface-area calculation | 2 |
| N2 adsorption/desorption, BET surface area and total pore volume | 2 |
| N2 sorption at 77 K fitted with Langmuir adsorption isotherm | 2 |
| Krypton adsorption / BET | 2 |
| N2 sorption / BJH pore analysis | 2 |
| nitrogen adsorption-desorption; BET and BJH | 2 |
| N2 adsorption/desorption isotherm analysis using BELSORP-max sorptometer (Microtrac) | 2 |
| N2 adsorption-desorption / BET and BJH | 2 |
| CO2 sorption isotherm with BET surface-area and pore-volume analysis | 2 |
| Low-pressure volumetric gas sorption, BelSorpmax | 2 |
| N2 sorption isotherm and pore-size distribution | 2 |
| low-pressure O2 adsorption isotherm | 2 |
| Nitrogen adsorption-desorption isotherm; BET surface area and pore-size distribution | 2 |
| N2 adsorption-desorption; BET surface area; BJH pore size distribution | 2 |
| BET N2 sorption | 2 |
| N2 adsorption-desorption; BET surface area and pore volume | 2 |
| N2 physisorption and BET surface-area analysis | 2 |
| 77 K N2 adsorption/desorption with BET and QSDFT analysis | 2 |
| N2 physisorption, BET and t-plot | 2 |
| N2 adsorption/desorption isotherms and BET analysis | 2 |
| BET nitrogen sorption | 2 |
| N2 sorption/desorption; BET; NLDFT pore-size analysis | 2 |
| N2 adsorption/desorption and t-plot | 2 |
| Water and NH3 vapour adsorption/desorption | 2 |
| N2 adsorption, BET surface area | 2 |
| N2 adsorption at 77 K; BET analysis | 2 |
| water vapour adsorption/desorption isotherm | 2 |
| N2 adsorption-desorption, BET surface area, and BJH pore-size distribution | 2 |
| N2 sorption isotherm and BET surface area analysis | 1 |
| PXRD and N2 sorption after chemical/electrolyte exposure | 1 |
| PXRD and N2 sorption after thermal treatment | 1 |
| N2 adsorption isotherm / BET surface area / pore size distribution | 1 |
| N2 adsorption/desorption isotherm and BET fit | 1 |
| N2/Ar adsorption-desorption | 1 |
| N2 adsorption/desorption and surface-area analysis | 1 |
| N2 sorption / BET and DFT pore-width analysis | 1 |
| N2 sorption isotherm; BET and Langmuir surface area | 1 |
| N2 sorption; Brunauer-Emmett-Teller (BET) surface area | 1 |
| N2 adsorption/desorption at 77 K; BET and t-plot analysis | 1 |
| N2 sorption isotherm and BET/NLDFT analysis | 1 |
| N2 sorption and BET analysis after metalation | 1 |
| N2 sorption and BET analysis of particle-size series | 1 |
| N2 sorption and BET/NLDFT analysis | 1 |
| Water vapour sorption | 1 |
| Nitrogen adsorption isotherms and BET surface area | 1 |
| N2 adsorption isotherm and BET/Tarazona NLDFT analysis | 1 |
| N2 adsorption/desorption BET; ASAP Plus 2020 | 1 |
| Volumetric gas adsorption isotherms | 1 |
| Gas sorption / BET from CO2 at 195 K | 1 |
| Structural modelling / CPK pore-size comparison | 1 |
| N2 sorption/BET at 77 K and PXRD | 1 |
| N2 sorption/BET at 77 K | 1 |
| N2 adsorption/desorption, BET analysis and N2-DFT pore-size distribution | 1 |
| N2 sorption isotherm, BET surface area, DFT pore-width distribution | 1 |
| N2 sorption isotherm, BET surface area and pore-volume analysis | 1 |
| N2 sorption; BET analysis | 1 |
| N2 adsorption/desorption, BET SSA, BJH mesopore distribution, nonlocal DFT micropore distribution | 1 |
| Volumetric gas sorption, Micromeritics 3Flex | 1 |
| Room-temperature pure-component gas adsorption isotherms | 1 |
| 77 K N2 adsorption isotherm and Langmuir surface-area calculation | 1 |
| In situ two-contact conductance during gas adsorption | 1 |
| N2 adsorption/desorption; BET surface-area analysis | 1 |
| N2 adsorption/desorption after Cd(II) sorption | 1 |
| Nitrogen adsorption/BET surface-area analysis under same activation conditions as Yb6(TTFTB)5 | 1 |
| Nitrogen adsorption isotherm and BET surface-area analysis, Micromeritics ASAP 2020 | 1 |
| N2 sorption; BET and NLDFT pore-size analysis | 1 |
| N2 adsorption isotherm and BET surface-area analysis. | 1 |
| N2 adsorption/desorption isotherms and NLDFT pore-size analysis | 1 |
| N2 sorption / BET and BJH pore-size analysis | 1 |
| Nitrogen adsorption-desorption at 77 K | 1 |
| N2 adsorption isotherm and BET fit using Micromeritics ASAP 2020 | 1 |
| N2 adsorption/desorption isotherm and NLDFT pore-size distribution | 1 |
| N2 sorption / BET | 1 |
| Nitrogen adsorption/desorption; BET | 1 |
| argon sorption, BET surface area, NLDFT pore size distribution | 1 |
| water vapour adsorption isotherm | 1 |
| N2 adsorption/desorption; BET and NLDFT pore-size analysis | 1 |
| PXRD, SEM, ICP-OES, N2 sorption, DFT pore size distribution | 1 |
| N2 adsorption-desorption on pellets | 1 |
| N2 adsorption-desorption and DFT pore size distribution | 1 |
| Water vapour adsorption-desorption | 1 |
| N2 adsorption/desorption and BET analysis at 77 K | 1 |
| N2 sorption, BET surface-area analysis | 1 |
| Pore size distribution from N2 sorption using BJH and HK methods | 1 |
| N2 adsorption at 77 K; BET surface area; NLDFT pore-size distribution | 1 |
| N2 adsorption-desorption, BET surface area and pore size distribution | 1 |
| N2 adsorption-desorption isotherm and BET surface area. | 1 |
| CO2 sorption; CO2-derived BET surface area | 1 |
| CO2 and H2O vapour sorption; CO2-derived BET surface area | 1 |
| N2 adsorption-desorption isotherm and BET surface area analysis | 1 |
| N2 adsorption-desorption isotherms; BET surface area; NLDFT pore-size distribution | 1 |
| N2 adsorption/desorption; BET and NLDFT analysis | 1 |
| N2 adsorption, BET analysis | 1 |
| N2 adsorption-desorption, BET surface area and BJH pore-size distribution | 1 |
| N2 adsorption/desorption at 77 K; BET surface area; carbon-slit-pore NLDFT pore-size distribution | 1 |
| CO2 and N2 sorption isotherms/selectivity | 1 |
| H2 gas sorption isotherms | 1 |
| N2 gas adsorption isotherms | 1 |
| N2 sorption-desorption and pore-size distribution | 1 |
| N2 sorption isotherms at 77 K; BET surface area and pore-size analysis using Micromeritics ASAP 2020 | 1 |
| 77 K N2 and 195 K CO2 adsorption isotherms | 1 |
| Gas uptake after solvent-exchange activation | 1 |
| N2 adsorption-desorption; BET surface area and pore-size analysis | 1 |
| N2 adsorption-desorption / BET analysis (Autosorb IQ, 77 K; NLDFT pore-size modelling) | 1 |
| Nitrogen gas adsorption isotherm | 1 |
| N2 sorption BET/BJH | 1 |
| N2 adsorption-desorption, BET surface area and pore-size distribution | 1 |
| N2 physisorption / BET analysis | 1 |
| N2 adsorption-desorption, BET surface area and Horvath-Kawazoe pore distribution | 1 |
| Gas sorption isotherm and BJH pore-size distribution | 1 |
| N2 adsorption/desorption at 77 K | 1 |
| N2 adsorption-desorption and BET/BJH/Saito-Foley pore analysis | 1 |
| N2 adsorption/desorption, BET surface area, BJH pore-size distribution | 1 |
| N2 adsorption-desorption BET and BJH pore-size distribution | 1 |
| nitrogen adsorption/desorption BET | 1 |
| N2 adsorption-desorption isotherms and BET surface area | 1 |
| N2 adsorption/desorption and BJH pore-size distribution | 1 |
| N2 adsorption isotherm / BET | 1 |
| N2 adsorption/desorption and BET/BJH analysis | 1 |
| ICP Co content, elemental-analysis N content, BET surface area, t-Plot micropore volume and BJH mesopore volume | 1 |
| N2 adsorption-desorption; BJH, NLDFT and BET analysis | 1 |
| N2 adsorption/desorption isotherms; BET surface area | 1 |
| N2 adsorption/desorption; BET and pore-size distribution using Micromeritics ASAP 2020 | 1 |
| BET surface area comparison | 1 |
| CO2 sorption | 1 |
| N2 adsorption/desorption isotherms | 1 |
| N2 and CO2 gas adsorption | 1 |
| Benzene and water vapour adsorption | 1 |
| N2 adsorption/desorption and CO2 adsorption | 1 |
| N2 adsorption/desorption; BET surface area and BJH pore analysis | 1 |
| BET adsorption-desorption and BJH pore size distribution | 1 |
| N2 adsorption/desorption isotherm on Quantachrome Autosorb Gas Sorption analyser IQ2 | 1 |
| N2 adsorption-desorption, JWGB analyser; BET equation | 1 |
| Post-soaking XRD, N2 adsorption, and FT-IR | 1 |
| N2 adsorption-desorption at 77 K; BET and pore-size distribution | 1 |
| N2 adsorption-desorption at 77 K; BET and NLDFT pore-size distribution | 1 |
| Surface area measurements | 1 |
| nitrogen gas adsorption/desorption isotherm | 1 |
| water vapour adsorption/desorption isotherms using BELSORP18-PLUS | 1 |
| N2 adsorption-desorption, BET | 1 |
| N2 sorption, BET analysis, DFT pore-size fitting | 1 |
| N2 adsorption/BET/NLDFT | 1 |
| N2 adsorption isotherms at 77 K, BELSORP-max; BET surface area | 1 |
| Organic vapour adsorption isotherms at 298 K, BELSORP-max | 1 |
| SEM, TEM, XRD, N2 BET | 1 |
| XPS, TG analysis, N2 adsorption/desorption BET | 1 |
| TG analysis, Raman spectroscopy, N2 BET | 1 |
| N2 sorption and pore size distribution | 1 |
| Brunauer-Emmett-Teller gas adsorption / pore-size analysis | 1 |
| N2 adsorption-desorption; BET and BJH desorption analysis | 1 |
| N2 and water vapour sorption | 1 |
| N2 adsorption-desorption isotherms; BET surface area and pore analysis | 1 |
| N2 adsorption isotherms at 77 K | 1 |
| N2 adsorption/desorption; BET specific surface area; TriStar 3020 | 1 |
| N2 adsorption-desorption at 77 K, Micromeritics ASAP 2050; BJH pore-size analysis | 1 |
| N2 adsorption-desorption and PLATON solvent-accessible void analysis | 1 |
| N2 adsorption-desorption isotherm, BJH pore size distribution and BET surface area | 1 |
| SEM, PXRD, and N2 sorption/BJH porosity | 1 |
| Oxygen adsorption | 1 |
| nitrogen adsorption-desorption and pore-size distribution analysis | 1 |
| N2 adsorption-desorption and DFT pore volume | 1 |
| N2 adsorption/desorption isotherm; BET surface area; BJH pore size distribution; Zeo++ pore diameter from crystal structure | 1 |
| N2 adsorption/desorption; BET analysis | 1 |
| inferred microporosity; no direct pore-size or surface-area measurement | 1 |
| N2 sorption at 77 K; BET | 1 |
| N2 sorption at 77 K; BET and NLDFT | 1 |
| N2 adsorption-desorption, BET and BJH analysis | 1 |
| N2 adsorption/desorption at 77 K; BET/NLDFT | 1 |
| N2 adsorption-desorption isotherm; DFT and Horvath-Kawazoe pore analysis | 1 |
| N2 adsorption-desorption; BET surface area; BJH pore model | 1 |
| N2 adsorption-desorption; BET surface area; NLDFT pore distribution | 1 |
| XRD, FTIR, SEM, TEM/EDS, TGA, ICP, XPS, Raman, BET | 1 |
| Brunauer-Emmett-Teller (BET) nitrogen adsorption-desorption; DFT pore size distribution | 1 |
| CO2 adsorption | 1 |
| N2 adsorption isotherm analysed by BET | 1 |
| N2 adsorption isotherm, BET analysis; Zeo++ geometric analysis | 1 |
| BET nitrogen adsorption on TriStar 3000 after activation | 1 |
| BET nitrogen adsorption on TriStar 3000 | 1 |
| N2 adsorption-desorption isotherms; BET surface area; pore size distribution | 1 |
| Brunauer-Emmett-Teller nitrogen adsorption (Quantachrome Autosorb-iQ) | 1 |
| N2 sorption at 77 K | 1 |
| N2 adsorption-desorption/BET/BJH | 1 |
| N2 and CO2 adsorption | 1 |
| CO2 gas adsorption isotherm | 1 |
| N2 adsorption/desorption and HK pore-size distribution | 1 |
| N2 sorption isotherm at 77 K, BET and DFT pore-size analysis | 1 |
| Qualitative porosity inferred from MOF structure/SEM; no BET measurement reported | 1 |
| BET surface-area measurement after thermal activation attempt | 1 |
| N2 adsorption-desorption BET, Micromeritics ASAP 2020 | 1 |
| N2 adsorption/desorption, BET surface area, pore-size distribution | 1 |
| N2 adsorption-desorption/BET and pore-size distribution | 1 |
| N2 adsorption-desorption isotherms; BET and NLDFT analysis | 1 |
| Nitrogen adsorption-desorption / BET analysis | 1 |
| N2 sorption isotherms | 1 |
| N2 sorption isotherms at 77 K | 1 |
| N2 adsorption-desorption at 77 K; NLDFT pore-size analysis | 1 |
| N2 adsorption and NLDFT pore-size analysis | 1 |
| Nitrogen adsorption/desorption isotherms at 77 K | 1 |
| N2 adsorption/desorption; BET surface area and pore size distribution | 1 |
| Gas sorption; CO2 adsorption/desorption and N2 sorption | 1 |
| N2 adsorption-desorption isotherm, BET surface area, Saito-Foley pore-size distribution | 1 |
| N2 adsorption/desorption pore-size distribution | 1 |
| Nitrogen adsorption-desorption isotherm; BET and BJH analyses | 1 |
| CO2 adsorption isotherm (Micromeritics ASAP 2020) | 1 |
| Surface area measurement reported from previous work. | 1 |
| N2 adsorption-desorption; BET and Horvath-Kawazoe analysis | 1 |
| Literature-reported BET surface area and crystallographic density used for normalisation | 1 |
| N2 sorption at 77 K; BJH and Horvath-Kawazoe pore-size analysis | 1 |
| Brunauer-Emmett-Teller (BET) surface area and pore-size analysis | 1 |
| Nitrogen adsorption-desorption isotherm and pore-size analysis | 1 |
| Nitrogen sorption BET/BJH analysis | 1 |
| Pore-size/selective-impregnation inference from donor uptake experiments | 1 |
| CO2 adsorption/sorption isotherm | 1 |
| Water vapour sorption isotherm, static volumetric method | 1 |
| N2 and CO2 gas adsorption isotherms | 1 |
| nitrogen adsorption/desorption and BJH pore-size analysis | 1 |
| BET specific surface area | 1 |
| N2 adsorption/desorption, BET, BJH pore distribution | 1 |
| BET N2 adsorption, Microtrac MRB BELSORP MAX | 1 |
| Water vapour adsorption gravimetry | 1 |
| N2 adsorption-desorption at 77 K; BET, t-plot and BJH analysis | 1 |
| N2 adsorption-desorption with BET/BJH analysis | 1 |
| N2 adsorption isotherm with BET surface area and NLDFT pore volume | 1 |
| N2 sorption isotherm and DFT pore width distribution | 1 |
| Structural pore-size assessment from prior crystal structure/geometric analysis | 1 |
| XRD, nitrogen sorption and TGA | 1 |
| Nitrogen and krypton sorption; BET and NLDFT pore-size analysis | 1 |
| Brunauer-Emmett-Teller N2 adsorption/desorption and NLDFT pore-size analysis | 1 |
| N2 sorption BET surface area and DFT pore-size distribution | 1 |
| BET pore distribution | 1 |
| CO2 sorption / BET surface area | 1 |
| CO2 adsorption-desorption isotherms; BET analysis | 1 |
| N2 sorption, BET, NL-DFT pore-size distribution, CO2 sorption | 1 |
| Nitrogen sorption/BET | 1 |
| Water vapour adsorption | 1 |
| N2 adsorption/desorption and PLATON extra-framework volume calculation | 1 |
| water vapour adsorption-desorption isotherm | 1 |
| N2 adsorption-desorption with BET surface-area and NLDFT pore-size analysis | 1 |
| Brunauer-Emmett-Teller nitrogen adsorption | 1 |
| 195 K CO2 adsorption | 1 |
| N2 adsorption-desorption isotherm; BET surface area and pore-size analysis | 1 |
| N2 adsorption/desorption, BET surface area and QSDFT pore-size analysis | 1 |
| Nitrogen adsorption-desorption isotherms; BET surface area; NLDFT pore-size distribution | 1 |
| N2 adsorption-desorption; BET surface area and BJH pore size | 1 |
| BET N2 adsorption/desorption and pore size distribution | 1 |
| Water sorption isotherm | 1 |
| N2 adsorption at 77 K and TGA | 1 |
| N2 sorption BET surface area and isotherm | 1 |
| BET surface area and pore-size context from cited prior characterisation | 1 |
| N2 adsorption-desorption with BET and NLDFT analysis | 1 |
| N2 adsorption at 77 K; CO2 adsorption at 273 and 298 K; BET and QS-DFT analysis | 1 |
| N2 adsorption-desorption; NLDFT pore-size distribution | 1 |
| Single-component volumetric gas sorption isotherms and isobars | 1 |
| N2 adsorption/desorption at 77 K; BET and NLDFT pore-size analysis | 1 |
| N2 adsorption/desorption at 77 K; BET analysis; pore-size distribution | 1 |
| CO2 adsorption/desorption | 1 |
| Water vapour adsorption/desorption | 1 |
| N2 adsorption-desorption isotherm and NLDFT pore size distribution | 1 |
| N2 adsorption-desorption BET/BJH, ASAP 2020 | 1 |
| RASPA molecular simulations; Widom insertion with He probe; Monte Carlo accessible surface and Gelb-Gubbins pore-size distribution | 1 |
| N2 adsorption-desorption isotherm and BJH pore-size distribution | 1 |
| N2 sorption at 77 K; BET surface area; QSDFT pore-size distribution | 1 |
| CO2 adsorption/desorption isotherm and BET analysis | 1 |
| Water vapour adsorption/desorption isotherms by BELSORP-max | 1 |
| Nitrogen gas adsorption, Brunauer-Emmett-Teller (BET) | 1 |
| N2 gas adsorption and NLDFT pore-size-distribution analysis | 1 |
| N2 adsorption/desorption, BET and DFT pore model | 1 |
| N2 gas sorption/BET surface area | 1 |
| NH3 and amine vapour adsorption/desorption isotherms | 1 |
| N2 adsorption-desorption/BET | 1 |
| Reported pore-size comparison table | 1 |
| N2 gas adsorption / BET | 1 |
| N2 adsorption-desorption at -196 C; BET surface area and BJH pore-size analysis | 1 |
| TEM/HRTEM and N2 adsorption-desorption | 1 |
| XPS before/after NH3 adsorption | 1 |
| NH3 vapour adsorption/desorption isotherm; 3H-2000P multistation weight method analyser | 1 |
| H2O vapour adsorption/desorption isotherm; 3H-2000P multistation weight method analyser | 1 |
| N2 adsorption-desorption; BET analysis; pore-size distribution | 1 |
| water vapour adsorption | 1 |
| N2 adsorption / BET surface area | 1 |
| N2 adsorption-desorption, BET surface area and DFT pore-size distribution | 1 |
| N2 adsorption | 1 |
| N2 sorption isotherm | 1 |
| post-photocatalysis N2 adsorption, PXRD, SEM/TEM-EDS | 1 |
| X-ray diffraction and BJH adsorption pore-diameter analysis | 1 |
| Humidity-variable photoluminescence coupled to DVS | 1 |
| N2 adsorption-desorption; BET/BJH/DFT analysis | 1 |
| Argon adsorption-desorption isotherm; BET/BJH analysis | 1 |
| N2 adsorption-desorption BET/BJH analysis (ASAP2460) | 1 |
| Nitrogen adsorption/desorption and BET/QSDFT analysis | 1 |