Harmonised techniqueNon-exclusive mapping

Gas sorption and porosity

Gas adsorption/desorption, BET, BJH and pore-size analyses.

446primary papers
892mapped measurements
2,640linked results
429raw method labels
The harmonised label does not replace the method

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

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

Mapped measurements

Filter source method wording, sample context and scientific purpose.

892 measurements

PorosityNitrogen sorption

Nitrogen adsorption/desorption; BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH analysis (ASAP2460)

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BJH, BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BJH, BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BJH, BET

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.

PorosityNitrogen sorption

Nitrogen sorption BET/BJH analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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

Ni-Ca dark brown crystals / powder · Powder

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET and BJH

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

PorosityNitrogen sorption

N2 adsorption-desorption / BET and BJH

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET and NL-DFT

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET and NL-DFT

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

PorosityUnspecified subtype

Volumetric gas adsorption isotherms

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.

PorosityNitrogen sorption

N2 adsorption/desorption at 77 K

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET and BJH desorption analysis

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.

PorosityNitrogen sorption

TEM/HRTEM and N2 adsorption-desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption isotherms / BET surface area

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.

PorosityNitrogen sorption

Krypton adsorption / BET

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

PorosityNitrogen sorption

Krypton adsorption / BET

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption, ASAP 2020, BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption, ASAP 2020, BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area and DFT pore-size distribution

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.

PorosityNitrogen sorptionSurface area

N2 adsorption / BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET analysis

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.

PorosityNitrogen sorption

N2 sorption-desorption and pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption and pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption with BET/BJH analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET and BJH analysis

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET/BJH/DFT analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm and BET/DFT pore analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm and BET/DFT pore analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm and BET/DFT pore analysis

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 sorption/BET/NLDFT

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

PorosityNitrogen sorption

N2 sorption/BET/NLDFT

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

PorosityNitrogen sorption

N2 sorption/BET/NLDFT

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

PorosityNitrogen sorption

N2 adsorption-desorption BET and BJH pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET and NLDFT

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

PorosityNitrogen sorption

N2 adsorption-desorption, BET and NLDFT

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

PorosityNitrogen sorptionSurface area

N2 gas sorption/BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherms

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.

PorosityNitrogen sorption

N2 sorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption BET

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

PorosityNitrogen sorption

N2 adsorption BET

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

PorosityNitrogen sorption

N2 adsorption BET

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

PorosityNitrogen sorption

N2 adsorption BET

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityUnspecified subtype

Volumetric gas sorption, Micromeritics 3Flex

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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

PorosityNitrogen sorption

N2 adsorption-desorption

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

PorosityNitrogen sorption

N2 sorption and BET analysis

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

PorosityNitrogen sorptionSurface area

BET surface area comparison

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

PorosityOther gas sorption

CO2 sorption

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

PorosityNitrogen sorption

N2 sorption and BET analysis

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

PorosityWater / vapour sorption

Dynamic vapour sorption (DVS)

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.

PorosityWater / vapour sorption

Dynamic vapour sorption (DVS)

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.

PorosityWater / vapour sorption

Dynamic vapour sorption (DVS)

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.

Sensing ApplicationWater / vapour sorption

Humidity-variable photoluminescence coupled to DVS

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.

PorosityWater / vapour sorption

Water vapour adsorption gravimetry

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorption

nitrogen adsorption-desorption and pore-size distribution analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

PorosityNitrogen sorptionOther gas sorption

CO2 adsorption isotherm; BET

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

PorosityNitrogen sorptionOther gas sorption

CO2 adsorption isotherm; BET

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm; BET

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

SpectroscopyOther gas sorption

XPS before/after NH3 adsorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption/BET/NLDFT

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).

PorosityNitrogen sorption

N2 adsorption-desorption/BET/NLDFT

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).

PorosityNitrogen sorption

N2 adsorption-desorption/BET/NLDFT

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).

PorosityNitrogen sorption

N2 sorption and pore size distribution

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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.

PorosityNitrogen sorption

N2 sorption / BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET surface-area analysis.

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.

PorosityNitrogen sorption

N2 adsorption at 77 K and TGA

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET/NLDFT analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption and pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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

PorosityNitrogen sorption

BET pore distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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

PorosityNitrogen sorption

N2 adsorption-desorption BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption and BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption / BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption / BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption / BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption / BET surface area

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.

PorosityNitrogen sorption

N2 sorption isotherm and DFT pore-size distribution

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.

PorosityNitrogen sorption

N2 sorption isotherm and DFT pore-size distribution

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.

PorosityNitrogen sorption

N2 sorption isotherm and DFT pore-size distribution

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.

PorosityNitrogen sorptionSurface area

BET specific surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET and BJH

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption; BET surface area and pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityWater / vapour sorption

Water vapour adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption at 77 K; BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption

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.

PorosityNitrogen sorption

N2 adsorption/desorption

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.

PorosityNitrogen sorption

N2 adsorption/desorption

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.

PorosityNitrogen sorptionSurface area

argon sorption BET surface area

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

PorosityNitrogen sorptionSurface area

argon sorption BET surface area

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherms

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET/BJH

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET/BJH

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET/BJH

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET/BJH

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

PorosityNitrogen sorption

N2 adsorption/BET/NLDFT

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET on ASAP 2020M

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET on ASAP 2020M

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET on ASAP 2020M

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

PorosityNitrogen sorption

N2 adsorption-desorption and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET and BJH analysis

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

PorositySurface area

Surface area measurements

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.

PorosityNitrogen sorption

N2 sorption isotherm

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET and BJH

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.

PorosityNitrogen sorption

N2 physisorption / BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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

PorosityNitrogen sorption

N2 adsorption-desorption / BET / BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET / BJH

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.

PorosityNitrogen sorption

N2 sorption BET and XRF

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

PorosityNitrogen sorption

N2 sorption BET and XRF

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

PorosityNitrogen sorption

N2 sorption BET and XRF

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherms; BET and NLDFT analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption and BET analysis

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET method, Quantachrome Autosorb-iQ

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.

PorosityNitrogen sorption

N2 sorption isotherms

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.

PorosityNitrogen sorption

N2 sorption and BET

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.

PorosityNitrogen sorption

N2 sorption and BET

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.

PorosityNitrogen sorption

N2 sorption and BET

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption; BET surface area and BJH pore size

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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

PorosityNitrogen sorption

N2 adsorption-desorption, BET

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption and BET surface area

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

PorosityNitrogen sorptionSurface area

N2 sorption; BET surface area

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

PorosityNitrogen sorptionSurface area

N2 sorption; BET surface area

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

PorosityWater / vapour sorption

water vapour adsorption-desorption isotherm

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET and NLDFT analysis

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).

PorosityNitrogen sorption

N2 adsorption/desorption and BET/NLDFT analysis

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

PorosityNitrogen sorption

N2 adsorption/desorption BET

2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport

UIO-66 powder · Powder · N2 sorption/desorption at 77 K.

PorosityNitrogen sorption

N2 adsorption/desorption BET

2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport

UIO-SOH nanoparticles · Powder · N2 sorption/desorption at 77 K.

PorosityNitrogen sorption

N2 adsorption/desorption BET

2023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport

UIO-SOLi nanoparticles · Powder · N2 sorption/desorption at 77 K.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityOther gas sorption

CO2 adsorption isotherm

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.

PorosityUnspecified subtype

Single-component volumetric gas sorption isotherms and isobars

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET

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

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption; BET surface area

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

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption; BET surface area

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

PorosityNitrogen sorptionSurface area

N2 adsorption and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption and BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption/BET

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.

PorosityWater / vapour sorption

H2O vapour sorption isotherm

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.

PorosityWater / vapour sorption

H2O vapour sorption isotherm

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.

PorosityWater / vapour sorption

H2O vapour sorption isotherm

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.

PorosityWater / vapour sorption

H2O vapour sorption isotherm

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorptionSurface area

N2 sorption at 77 K fitted with Langmuir adsorption isotherm

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.

PorosityNitrogen sorptionSurface area

N2 sorption at 77 K fitted with Langmuir adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption/desorption, BET and DFT pore model

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 physisorption/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.

PorosityNitrogen sorptionSurface area

N2 physisorption/BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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

PorosityOther gas sorption

CO2 adsorption/desorption

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

PorosityNitrogen sorption

N2 adsorption/desorption

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

PorosityWater / vapour sorption

Water vapour adsorption/desorption

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

PorosityNitrogen sorption

N2 adsorption/desorption, BET

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.

PorosityNitrogen sorptionOther gas sorption

N2 and CO2 gas adsorption isotherms

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

PorosityNitrogen sorption

N2 physisorption and BET surface-area analysis

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

PorosityNitrogen sorption

N2 physisorption and BET surface-area analysis

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

PorosityNitrogen sorption

Nitrogen and krypton sorption; BET and NLDFT pore-size analysis

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area

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.

PorosityNitrogen sorptionOther gas sorption

CO2 adsorption-desorption isotherms; BET analysis

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

PorosityNitrogen sorption

77 K N2 adsorption/desorption with BET and QSDFT analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption, BET analysis

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.

SpectroscopyNitrogen sorption

Post-soaking XRD, N2 adsorption, and FT-IR

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.

PorosityNitrogen sorption

N2 adsorption-desorption, JWGB analyser; BET equation

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.

PorosityNitrogen sorption

N2 adsorption-desorption at 77 K; DFT pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorption

N2 physisorption, BET and t-plot

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.

PorosityNitrogen sorption

N2 physisorption, BET and t-plot

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm and DFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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.

PorosityNitrogen sorption

BET nitrogen sorption

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.

PorosityNitrogen sorption

BET nitrogen sorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET and BJH analysis

2023 · Sulfur-Bridged Bonds Heightened Na-Storage Properties in MnS Nanocubes Encapsulated by S-Doped Carbon Matrix Synthesized via Solvent-Free Tactics for High-Performance Hybrid Sodium Ion Capacitors

MSC-850 C-sublimed sulfur / MSC · Powder · Samples degassed at 200 C for 10 h before N2 sorption.

PorosityNitrogen sorption

Nitrogen sorption/BET

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.

PorosityWater / vapour sorption

Water vapour adsorption

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption and BET surface area

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

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption and BET surface area

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

PorosityNitrogen sorption

N2 adsorption/desorption BET; ASAP Plus 2020

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.

PorosityNitrogen sorption

N2 physisorption at 77 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.

PorosityNitrogen sorption

N2 physisorption at 77 K

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.

PorosityNitrogen sorption

N2 physisorption at 77 K

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.

PorosityNitrogen sorption

N2 physisorption at 77 K

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.

PorosityNitrogen sorption

N2 adsorption/desorption and t-plot

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

PorosityNitrogen sorption

N2 adsorption/desorption and t-plot

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

PorosityWater / vapour sorptionOther gas sorption

Water and NH3 vapour adsorption/desorption

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

PorosityWater / vapour sorptionOther gas sorption

Water and NH3 vapour adsorption/desorption

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

PorosityNitrogen sorptionSurface area

Nitrogen adsorption/desorption; BET surface area

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.

PorosityNitrogen sorption

N2 sorption at 77 K; BET

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.

PorosityNitrogen sorption

N2 sorption at 77 K; BET and NLDFT

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET analysis

2023 · Ultrasensitive levofloxacin electrochemical biosensor based on semiconducting covalent organic framework/poly-L-cysteine/triangular Ag nanoplates modified glassy carbon electrode

TABQ-CHHO-COF powder · Powder · N2 adsorption/desorption measured at 77 K.

PorosityNitrogen sorption

N2 adsorption/desorption, BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption/desorption, BET and BJH

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.

PorosityNitrogen sorption

N2 physisorption; BET; QSDFT pore-size distribution

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

PorosityNitrogen sorption

N2 physisorption; BET; QSDFT pore-size distribution

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

PorosityNitrogen sorption

N2 physisorption; BET; QSDFT pore-size distribution

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

PorosityNitrogen sorption

N2/Ar adsorption-desorption

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

PorosityNitrogen sorption

N2 adsorption isotherm analysed by BET

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.

PorosityNitrogen sorptionOther gas sorption

N2 adsorption/desorption and CO2 adsorption

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.

PorosityNitrogen sorption

nitrogen adsorption-desorption; BET and BJH

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.

PorosityOther gas sorption

low-pressure O2 adsorption isotherm

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

PorosityOther gas sorption

low-pressure O2 adsorption isotherm

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

PorosityNitrogen sorptionSurface area

BET surface area

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.

PorosityNitrogen sorptionSurface area

BET surface area

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.

PorosityNitrogen sorptionSurface area

BET surface area

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.

PorosityNitrogen sorptionOther gas sorptionSurface area

CO2 sorption; CO2-derived BET surface area

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.

PorosityNitrogen sorptionWater / vapour sorptionOther gas sorptionSurface area

CO2 and H2O vapour sorption; CO2-derived BET surface area

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.

Diffraction StructureNitrogen sorption

XRD, nitrogen sorption and TGA

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET and BJH

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption

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.

PorosityNitrogen sorptionOther gas sorption

Gas sorption / BET from CO2 at 195 K

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption at 77 K; BET surface area

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.

PorosityNitrogen sorption

N2 adsorption isotherm, BET analysis; Zeo++ geometric analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption isotherms / BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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.

PorosityNitrogen sorptionSurface area

Brunauer-Emmett-Teller N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

Brunauer-Emmett-Teller N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

Brunauer-Emmett-Teller N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

Brunauer-Emmett-Teller N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption and BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BJH pore-size distribution

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption and BET surface area

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.

PorosityNitrogen sorptionSurface area

77 K N2 sorption, BET surface area, QSDFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET/NLDFT

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET/NLDFT

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.

PorosityNitrogen sorption

N2 adsorption-desorption, BET/NLDFT

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption isotherm; BET and BJH analyses

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.

PorosityNitrogen sorption

N2 sorption isotherm and BET/NLDFT analysis

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.

PorosityNitrogen sorption

N2 sorption and BET analysis after metalation

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.

PorosityNitrogen sorption

N2 sorption and BET analysis of particle-size series

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.

PorosityNitrogen sorption

N2 sorption / BET analysis

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.

PorosityNitrogen sorption

N2 sorption / BET analysis

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.

PorosityNitrogen sorption

N2 sorption / BET and DFT pore-width analysis

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.

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityOther gas sorption

CO2 adsorption isotherms

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

PorosityOther gas sorption

CO2 adsorption isotherms

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

PorosityOther gas sorption

CO2 adsorption isotherms

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

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis at 77 K

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.

PorosityNitrogen sorption

N2 adsorption-desorption and DFT pore volume

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

PorosityNitrogen sorption

N2 adsorption-desorption and PLATON solvent-accessible void analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption, BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption and BET analysis

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.

PorosityNitrogen sorption

N2 gas adsorption / BET

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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.

PorosityNitrogen sorption

N2 sorption isotherm and pore-size distribution

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.

PorosityNitrogen sorption

N2 sorption isotherm and pore-size distribution

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption-desorption, BET surface area and pore size distribution

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 ℃.

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherms and BET analysis

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.

PorosityNitrogen sorption

Gas sorption isotherm and BJH pore-size distribution

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.

PorosityNitrogen sorption

N2 adsorption isotherms at 77 K

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.

PorosityNitrogen sorptionSurface area

N2 adsorption, BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption, BET surface area

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.

PorosityNitrogen sorption

BET nitrogen adsorption

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

PorosityNitrogen sorption

BET nitrogen adsorption

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

PorosityNitrogen sorption

BET nitrogen adsorption

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

PorosityNitrogen sorptionOther gas sorption

N2/CO2 adsorption, BET, NLDFT/BJH

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

PorosityNitrogen sorptionOther gas sorption

N2/CO2 adsorption, BET, NLDFT/BJH

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

PorosityNitrogen sorptionOther gas sorption

N2/CO2 adsorption, BET, NLDFT/BJH

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

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET, t-plot and BJH analyses

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET analysis

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.

PorosityNitrogen sorption

N2 sorption / BET and BJH pore-size analysis

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.

PorosityNitrogen sorption

N2 sorption, BET surface-area analysis

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption / BET analysis

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.

PorosityNitrogen sorption

Nitrogen adsorption/desorption and BET/QSDFT analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionOther gas sorption

N2 and CO2 gas sorption

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.

PorosityNitrogen sorptionOther gas sorption

N2 and CO2 gas sorption

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.

PorosityNitrogen sorptionSurface area

N2 sorption; BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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

PorosityOther gas sorption

CO2 adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption-desorption; NLDFT pore-size distribution

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

PorosityOther gas sorption

CO2 adsorption/sorption isotherm

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).

PorosityNitrogen sorption

N2 adsorption-desorption isotherms

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.

PorosityNitrogen sorption

N2 sorption at 77 K and calculated solvent-accessible void analysis

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.

PorosityNitrogen sorption

N2 sorption at 77 K and calculated solvent-accessible void analysis

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.

PorosityNitrogen sorption

N2 sorption at 77 K and calculated solvent-accessible void analysis

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.

PorosityNitrogen sorption

N2 sorption at 77 K and calculated solvent-accessible void analysis

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.

PorosityWater / vapour sorption

water vapour adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption isotherm

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

PorosityNitrogen sorption

N2 adsorption isotherm

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

PorosityNitrogen sorption

BET nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

BET nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

BET nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

BET nitrogen adsorption-desorption

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.

PorosityNitrogen sorption

N2 sorption / BJH pore analysis

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

PorosityNitrogen sorption

N2 sorption / BJH pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore diameter distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption and NLDFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption and NLDFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption and NLDFT pore-size analysis

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.

PorosityUnspecified subtype

Reported pore-size comparison table

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET

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

PorosityNitrogen sorption

N2 adsorption/desorption; BET

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

PorosityNitrogen sorptionOther gas sorption

CO2 adsorption/desorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption/BET analysis

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).

PorosityNitrogen sorption

N2 adsorption/BET analysis

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).

PorosityNitrogen sorption

N2 adsorption/BET analysis

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).

PorosityNitrogen sorptionWater / vapour sorption

N2 and water vapour sorption

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

PorosityNitrogen sorption

Krypton sorption, BET analysis

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.

PorosityNitrogen sorption

Krypton sorption, BET analysis

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.

PorosityNitrogen sorption

Krypton sorption, BET analysis

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.

PorosityNitrogen sorption

Krypton sorption, BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption with BET and NLDFT analysis

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.

PorosityWater / vapour sorption

Water adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption/desorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH, ASAP 2020

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET/BJH analysis

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.

PorosityNitrogen sorption

nitrogen adsorption/desorption and BJH pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption/BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET and DFT pore model

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET and DFT pore model

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.

PorosityWater / vapour sorption

water vapour adsorption

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

PorosityWater / vapour sorption

Organic vapour adsorption isotherms at 298 K, BELSORP-max

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.

PorosityNitrogen sorption

N2 sorption isotherms at 77 K

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.

Computational ModellingUnspecified subtype

RASPA molecular simulations; Widom insertion with He probe; Monte Carlo accessible surface and Gelb-Gubbins pore-size distribution

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityUnspecified subtype

Structural modelling / CPK pore-size comparison

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption/desorption pore-size distribution

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.

PorosityNitrogen sorption

N2 sorption isotherm and BET analysis

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).

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm; BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET fit

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET fit

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET fit

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET fit

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherm and BET fit

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.

PorosityNitrogen sorption

N2 sorption / BET

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/BET surface area

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET

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.

PorosityNitrogen sorption

Nitrogen adsorption/desorption; BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 sorption / BET surface area

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

N2 adsorption/BET

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

PorosityNitrogen sorption

BET N2 sorption

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.

PorosityNitrogen sorption

BET N2 sorption

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.

PorosityOther gas sorption

195 K CO2 adsorption

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.

PorosityNitrogen sorption

N2 adsorption at 77 K; BET analysis

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

PorosityNitrogen sorption

N2 adsorption at 77 K; BET analysis

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

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area

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

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area and isotherm

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

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area

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

PorosityNitrogen sorptionSurface area

N2 sorption BET surface area

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

PorosityNitrogen sorption

N2 adsorption-desorption isotherm and NLDFT pore size distribution

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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

PorosityNitrogen sorptionOther gas sorption

CO2 sorption isotherm with BET surface-area and pore-volume analysis

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

PorosityNitrogen sorptionOther gas sorption

CO2 sorption isotherm with BET surface-area and pore-volume analysis

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

PorosityNitrogen sorption

N2 adsorption-desorption; multipoint BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption; multipoint BET and BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption; multipoint BET and BJH

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.

PorosityNitrogen sorption

N2 sorption isotherm / BET / BJH

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.

PorosityNitrogen sorption

N2 sorption isotherm / BET / BJH

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.

PorosityNitrogen sorption

N2 sorption isotherm / BET / BJH

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.

PorosityNitrogen sorptionSurface area

N2 sorption; BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption; BET surface area

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET

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.

PorosityNitrogen sorption

N2 sorption BET/BJH

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.

PorosityNitrogen sorption

N2 gas adsorption and NLDFT pore-size-distribution analysis

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.

PorosityWater / vapour sorptionOther gas sorption

NH3 and amine vapour adsorption/desorption isotherms

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.

PorosityWater / vapour sorption

Water vapour adsorption/desorption isotherm

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.

PorosityNitrogen sorption

N2 sorption/BET and DFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption isotherms and BET analysis

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.

Sensing ApplicationUnspecified subtype

In situ two-contact conductance during gas adsorption

2019 · Chemiresistive Detection of Gaseous Hydrocarbons and Interrogation of Charge Transport in Cu[Ni(2,3-pyrazinedithiolate) 2 ] by Gas Adsorption

Hydrocarbon-dosed Cu[Ni(pdt)2] pellet · Pellet · Pressed pellet in custom conductivity cell attached to Micromeritics 3-Flex; room-temperature steady-state conductivities of Cu[Ni(pdt)2].nCxHy measured under constant current as a function of pressure; baseline at 1 ubar.

PorosityUnspecified subtype

Room-temperature pure-component gas adsorption 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 · 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.

PorosityNitrogen sorptionSurface area

77 K N2 adsorption isotherm and Langmuir surface-area calculation

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.

PorosityNitrogen sorption

N2 adsorption-desorption/BET and pore-size distribution

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.

PorosityNitrogen sorption

Nitrogen adsorption isotherm with BET analysis

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.

PorosityNitrogen sorption

Nitrogen adsorption isotherm with BET analysis

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.

PorosityNitrogen sorption

Nitrogen adsorption isotherm with BET analysis

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.

PorosityNitrogen sorptionOther gas sorptionSurface area

CO2 sorption / BET surface area

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

PorosityNitrogen sorption

N2 sorption, BET analysis, DFT pore-size fitting

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption BET/BJH

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.

PorosityNitrogen sorption

N2 adsorption-desorption at 77 K; NLDFT pore-size analysis

2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction

(U+S)-CoFe-MOF hierarchical nanosheets · Nanosheet · BET/sorption comparison for U+S, U and S CoFe-MOFs.

PorosityNitrogen sorption

N2 adsorption and NLDFT pore-size analysis

2019 · From Low-to High-Crystallinity Bimetal-Organic Framework Nanosheet with Highly Exposed Boundaries: An Efficient and Stable Electrocatalyst for Oxygen Evolution Reaction

(U+S)-Ni-MOF hierarchical nanosheets · Nanosheet · Generality examples for Ni-MOF, NiV-MOF and NiCoFe-MOF before/after solvothermal treatment.

PorosityWater / vapour sorption

Water vapour sorption isotherm, static volumetric method

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityWater / vapour sorption

Water sorption isotherm

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.

PorosityNitrogen sorption

Nitrogen adsorption/desorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption BET analysis

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.

OtherNitrogen sorption

XRD, FTIR, SEM, TEM/EDS, TGA, ICP, XPS, Raman, BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption/desorption; BET; BJH pore volume; tap density

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

BET nitrogen adsorption on TriStar 3000

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)

PorosityNitrogen sorption

N2 adsorption/desorption and DFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption and DFT pore-size analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption and DFT pore-size analysis

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.

PorosityNitrogen sorption

N2 sorption; BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption; BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET

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.

PorosityNitrogen sorption

nitrogen adsorption/desorption BET

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

PorosityNitrogen sorption

N2 sorption at 77 K

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.

PorosityNitrogen sorption

XPS, TG analysis, N2 adsorption/desorption BET

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

SpectroscopyNitrogen sorption

TG analysis, Raman spectroscopy, N2 BET

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

Diffraction StructureNitrogen sorption

SEM, TEM, XRD, N2 BET

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

PorosityNitrogen sorptionSurface area

N2 adsorption/BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption on pellets

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption, BET surface area

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.

Diffraction StructureNitrogen sorption

PXRD and N2 sorption after chemical/electrolyte exposure

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm / BET surface area / pore size distribution

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.

Diffraction StructureNitrogen sorption

PXRD and N2 sorption after thermal treatment

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 sorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption and BET surface area

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

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherms; BET surface area

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.

PorosityWater / vapour sorption

Water vapour adsorption/desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption-desorption

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.

PorosityNitrogen sorptionOther gas sorption

N2 and CO2 gas adsorption

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

PorosityWater / vapour sorptionOther gas sorption

Benzene and water vapour adsorption

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

PorosityNitrogen sorption

N2 sorption and BET/NLDFT analysis

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.

PorosityWater / vapour sorption

Water vapour sorption

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.

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorptionSurface area

t-plot external surface area analysis

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

PorosityNitrogen sorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption-desorption isotherm

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.

PorosityNitrogen sorption

N2 sorption; BET surface-area analysis

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.

PorosityNitrogen sorption

N2 sorption; BET surface-area analysis

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.

PorosityNitrogen sorption

N2 adsorption/desorption, BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption, BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption, BET

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.

PorosityNitrogen sorption

N2 adsorption/desorption and surface-area analysis

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.

PorosityNitrogen sorptionOther gas sorption

N2 and CO2 adsorption

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.

PorosityNitrogen sorption

Nitrogen adsorption-desorption at 77 K

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.

PorosityUnspecified subtype

Gas uptake after solvent-exchange activation

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET fit

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.

Diffraction StructureNitrogen sorption

SEM, PXRD, and N2 sorption/BJH porosity

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

PorosityNitrogen sorption

N2 adsorption/desorption BET

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.

PorosityOther gas sorption

CO2 adsorption

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

PorosityNitrogen sorption

N2 adsorption/desorption

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.

PorosityWater / vapour sorption

Water adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET analysis

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.

PorosityNitrogen sorption

N2 adsorption-desorption / BET analysis

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityWater / vapour sorption

Water vapour adsorption/desorption isotherms by BELSORP-max

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.

PorosityOther gas sorption

Oxygen adsorption

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorptionOther gas sorption

77 K N2 and 195 K CO2 adsorption isotherms

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.

PorosityNitrogen sorptionSurface area

N2 adsorption isotherm and BET surface area

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.

PorosityNitrogen sorption

N2 sorption/BET at 77 K and PXRD

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

PorosityNitrogen sorption

N2 sorption/BET at 77 K

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

PorosityNitrogen sorption

N2 adsorption isotherm

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.

PorosityNitrogen sorption

nitrogen gas adsorption/desorption isotherm

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

PorosityWater / vapour sorption

water vapour adsorption/desorption isotherms using BELSORP18-PLUS

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

PorosityOther gas sorption

CO2 gas adsorption isotherm

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.

PorosityNitrogen sorptionSurface area

N2 adsorption/desorption isotherm; BET surface area

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.

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorptionSurface area

BET surface area and pore analysis

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

PorosityNitrogen sorption

N2 adsorption isotherm / BET

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

PorosityNitrogen sorptionOther gas sorption

Gas sorption; CO2 adsorption/desorption and N2 sorption

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.

PorosityNitrogen sorptionOther gas sorption

CO2 and N2 sorption isotherms/selectivity

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.

PorosityUnspecified subtype

H2 gas sorption isotherms

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.

PorosityNitrogen sorption

N2 gas adsorption isotherms

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.

PorosityNitrogen sorptionSurface area

N2 adsorption BET surface area

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

PorosityUnspecified subtype

Low-pressure volumetric gas sorption, BelSorpmax

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.

PorosityUnspecified subtype

Low-pressure volumetric gas sorption, BelSorpmax

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET analysis

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.

PorosityNitrogen sorption

N2 adsorption isotherm and BET/Tarazona NLDFT analysis

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.

PorosityNitrogen sorption

N2 sorption isotherm and BET analysis

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.

PorosityNitrogen sorption

Nitrogen gas adsorption isotherm

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].

Raw method vocabulary

These are the exact source-preserving method strings consolidated by this technique group.

Show 429 reported method labels
Raw method labelMapped measurements
N2 adsorption-desorption; BET, t-plot and BJH analyses17
N2 adsorption isotherm15
N2 adsorption isotherm and BET surface area13
N2 adsorption/desorption BET13
N2 adsorption-desorption; BET analysis11
N2 adsorption BET surface area10
N2 adsorption-desorption9
Combined PXRD/FWHM crystallite-size analysis, N2 adsorption BET, UV-vis-NIR Tauc gap and PESA HOMO/LUMO summary9
N2 adsorption isotherm and BET analysis8
N2 Brunauer-Emmett-Teller surface-area analysis8
t-plot external surface area analysis8
N2 adsorption/BET8
CO2 adsorption isotherm8
N2 adsorption-desorption; BET and BJH analysis8
N2 sorption; BET surface area; t-method micropore volume; total pore volume at P/P0 = 0.998
N2 adsorption/desorption and BET analysis7
N2 adsorption-desorption BET7
BET surface area and pore analysis7
N2 adsorption isotherm; BET surface area6
N2 adsorption-desorption isotherm6
N2 adsorption/desorption isotherm6
N2 adsorption-desorption isotherm; BET6
N2 adsorption-desorption BET/BJH6
N2 adsorption/desorption6
N2 adsorption-desorption / BET6
Volumetric N2 adsorption at 77 K and Ar adsorption at 87 K; BET/Langmuir and DR pore-volume analysis6
N2 adsorption/desorption isotherm; BET surface area; pore-size distribution6
N2 adsorption/desorption; BET; BJH pore volume; tap density6
BET surface area and pore diameter distribution6
N2 adsorption isotherm and BET fit5
N2 sorption; BET surface area5
N2 adsorption isotherm and BET surface-area analysis5
N2 adsorption-desorption and BET analysis5
N2 sorption isotherm and BET surface area5
nitrogen physisorption, BET surface area, QSDFT pore size distribution5
N2 sorption / BET surface area5
N2 adsorption/desorption isotherms and BET surface area5
N2 adsorption-desorption; BET surface area5
Nitrogen adsorption-desorption4
N2 adsorption and BET surface area4
N2 adsorption-desorption isotherm; BET surface area4
N2 sorption isotherm and DFT pore-size distribution4
BET nitrogen adsorption-desorption4
N2 adsorption/desorption isotherm and BET analysis4
N2 sorption, BET surface area and NLDFT/QSDFT pore-size analysis4
N2 adsorption/desorption, BET4
N2 sorption BET surface area4
N2 adsorption/desorption, BET surface area4
N2 adsorption-desorption; BET/BJH4
Water vapour adsorption/desorption isotherm4
N2 physisorption at 77 K4
N2 adsorption/desorption at 77 K with BET and H-K pore-size analysis4
N2 adsorption BET4
Brunauer-Emmett-Teller N2 adsorption-desorption4
N2 sorption at 77 K and calculated solvent-accessible void analysis4
Nitrogen adsorption/desorption; BET surface area4
N2 adsorption-desorption, BET and NLDFT4
H2O vapour sorption isotherm4
Krypton sorption, BET analysis4
N2 adsorption/desorption; BET and DFT pore model4
N2 adsorption-desorption, BET analysis3
N2 sorption isotherm and Brunauer-Emmett-Teller surface area.3
N2 adsorption/desorption isotherms; BETSI/Rouquerol BET analysis3
Nitrogen adsorption isotherm with BET analysis3
N2 adsorption/desorption isotherm and BET surface area3
N2 sorption isotherm and BET analysis3
N2 adsorption-desorption and BET surface area3
N2 adsorption/desorption and BET/NLDFT analysis3
N2 adsorption/desorption and DFT pore-size analysis3
N2 physisorption; BET; QSDFT pore-size distribution3
N2 adsorption/BET analysis3
N2 adsorption isotherm at 77 K using Micromeritics ASAP 2020; BET theory used for surface area.3
Langmuir surface area, cited experimental literature value3
N2 adsorption/desorption isotherm and BET/DFT pore analysis3
N2 adsorption/desorption and BET surface area3
N2 adsorption/desorption; BET3
N2/CO2 adsorption, BET, NLDFT/BJH3
N2 sorption isotherm / BET / BJH3
N2 adsorption-desorption; multipoint BET and BJH3
N2 sorption / BET analysis3
N2 adsorption/desorption; BET and BJH3
N2 adsorption/desorption isotherm; BET surface area3
BET surface area3
N2 sorption BET and XRF3
N2 adsorption-desorption, BJH, BET3
N2 adsorption-desorption, BET and BJH3
N2 adsorption-desorption at 77 K; BET and DFT pore analysis3
N2 adsorption-desorption; BET surface area after chronoamperometric test3
N2 adsorption-desorption/BET/NLDFT3
N2 sorption/BET/NLDFT3
N2 adsorption-desorption, BET/NLDFT3
BET nitrogen adsorption3
N2 sorption and BET3
77 K N2 sorption, BET surface area, QSDFT pore-size analysis3
N2 adsorption-desorption / BET analysis3
N2 adsorption-desorption; BET surface area and pore-size distribution3
N2 adsorption-desorption; BET3
N2 adsorption-desorption and NLDFT pore-size analysis3
CO2 adsorption isotherms3
N2 adsorption isotherm and BJH pore-size distribution3
Dynamic vapour sorption (DVS)3
N2 adsorption/desorption; BET on ASAP 2020M3
N2 adsorption-desorption; BET method, Quantachrome Autosorb-iQ3
N2 adsorption-desorption; BET surface area; DFT pore width distribution2
N2 adsorption-desorption / BET / BJH2
N2 adsorption-desorption, BET surface-area analysis.2
N2 adsorption-desorption isotherm; BET analysis2
N2 and CO2 gas sorption2
CO2 adsorption isotherm; BET2
N2 adsorption/BET surface area2
argon sorption BET surface area2
N2 adsorption-desorption; BET and BJH/KJS pore-size analysis2
N2 adsorption/desorption BET analysis2
N2 adsorption-desorption isotherm and multipoint BET surface area.2
N2 adsorption/desorption, BET and BJH2
Nitrogen adsorption/desorption; BET analysis2
N2 adsorption-desorption and pore-size distribution2
Nitrogen adsorption-desorption isotherms (ASAP 2010C)2
N2 sorption; BET surface-area analysis2
N2 adsorption-desorption, ASAP 2020, BET analysis2
N2 adsorption-desorption at 77 K; BET, Langmuir and t-plot analysis2
Water adsorption isotherm2
N2 adsorption-desorption isotherms2
CO2 adsorption/desorption isotherm and surface area2
N2 sorption/BET and DFT pore-size analysis2
N2 sorption and BET analysis2
water vapour adsorption isotherm / water BET calculation2
N2 adsorption-desorption; BET, T-plot and NLDFT analysis2
N2 adsorption-desorption at 77 K; BET surface area2
N2 adsorption/desorption; BET and NL-DFT2
N2 adsorption-desorption BET (Quantachrome Instruments version 5.0)2
N2 adsorption-desorption; BET and t-plot2
N2 adsorption/desorption; BET specific surface area; DFT pore size distribution2
N2 adsorption-desorption at 77 K; DFT pore-size distribution2
N2 physisorption/BET surface area2
N2 adsorption-desorption isotherm and BET analysis2
N2 adsorption-desorption isotherms / BET surface area2
N2 sorption isotherm and BET surface-area analysis2
N2 adsorption-desorption isotherm and DFT pore-size analysis2
N2 adsorption-desorption isotherm; BET surface-area calculation2
N2 adsorption/desorption, BET surface area and total pore volume2
N2 sorption at 77 K fitted with Langmuir adsorption isotherm2
Krypton adsorption / BET2
N2 sorption / BJH pore analysis2
nitrogen adsorption-desorption; BET and BJH2
N2 adsorption/desorption isotherm analysis using BELSORP-max sorptometer (Microtrac)2
N2 adsorption-desorption / BET and BJH2
CO2 sorption isotherm with BET surface-area and pore-volume analysis2
Low-pressure volumetric gas sorption, BelSorpmax2
N2 sorption isotherm and pore-size distribution2
low-pressure O2 adsorption isotherm2
Nitrogen adsorption-desorption isotherm; BET surface area and pore-size distribution2
N2 adsorption-desorption; BET surface area; BJH pore size distribution2
BET N2 sorption2
N2 adsorption-desorption; BET surface area and pore volume2
N2 physisorption and BET surface-area analysis2
77 K N2 adsorption/desorption with BET and QSDFT analysis2
N2 physisorption, BET and t-plot2
N2 adsorption/desorption isotherms and BET analysis2
BET nitrogen sorption2
N2 sorption/desorption; BET; NLDFT pore-size analysis2
N2 adsorption/desorption and t-plot2
Water and NH3 vapour adsorption/desorption2
N2 adsorption, BET surface area2
N2 adsorption at 77 K; BET analysis2
water vapour adsorption/desorption isotherm2
N2 adsorption-desorption, BET surface area, and BJH pore-size distribution2
N2 sorption isotherm and BET surface area analysis1
PXRD and N2 sorption after chemical/electrolyte exposure1
PXRD and N2 sorption after thermal treatment1
N2 adsorption isotherm / BET surface area / pore size distribution1
N2 adsorption/desorption isotherm and BET fit1
N2/Ar adsorption-desorption1
N2 adsorption/desorption and surface-area analysis1
N2 sorption / BET and DFT pore-width analysis1
N2 sorption isotherm; BET and Langmuir surface area1
N2 sorption; Brunauer-Emmett-Teller (BET) surface area1
N2 adsorption/desorption at 77 K; BET and t-plot analysis1
N2 sorption isotherm and BET/NLDFT analysis1
N2 sorption and BET analysis after metalation1
N2 sorption and BET analysis of particle-size series1
N2 sorption and BET/NLDFT analysis1
Water vapour sorption1
Nitrogen adsorption isotherms and BET surface area1
N2 adsorption isotherm and BET/Tarazona NLDFT analysis1
N2 adsorption/desorption BET; ASAP Plus 20201
Volumetric gas adsorption isotherms1
Gas sorption / BET from CO2 at 195 K1
Structural modelling / CPK pore-size comparison1
N2 sorption/BET at 77 K and PXRD1
N2 sorption/BET at 77 K1
N2 adsorption/desorption, BET analysis and N2-DFT pore-size distribution1
N2 sorption isotherm, BET surface area, DFT pore-width distribution1
N2 sorption isotherm, BET surface area and pore-volume analysis1
N2 sorption; BET analysis1
N2 adsorption/desorption, BET SSA, BJH mesopore distribution, nonlocal DFT micropore distribution1
Volumetric gas sorption, Micromeritics 3Flex1
Room-temperature pure-component gas adsorption isotherms1
77 K N2 adsorption isotherm and Langmuir surface-area calculation1
In situ two-contact conductance during gas adsorption1
N2 adsorption/desorption; BET surface-area analysis1
N2 adsorption/desorption after Cd(II) sorption1
Nitrogen adsorption/BET surface-area analysis under same activation conditions as Yb6(TTFTB)51
Nitrogen adsorption isotherm and BET surface-area analysis, Micromeritics ASAP 20201
N2 sorption; BET and NLDFT pore-size analysis1
N2 adsorption isotherm and BET surface-area analysis.1
N2 adsorption/desorption isotherms and NLDFT pore-size analysis1
N2 sorption / BET and BJH pore-size analysis1
Nitrogen adsorption-desorption at 77 K1
N2 adsorption isotherm and BET fit using Micromeritics ASAP 20201
N2 adsorption/desorption isotherm and NLDFT pore-size distribution1
N2 sorption / BET1
Nitrogen adsorption/desorption; BET1
argon sorption, BET surface area, NLDFT pore size distribution1
water vapour adsorption isotherm1
N2 adsorption/desorption; BET and NLDFT pore-size analysis1
PXRD, SEM, ICP-OES, N2 sorption, DFT pore size distribution1
N2 adsorption-desorption on pellets1
N2 adsorption-desorption and DFT pore size distribution1
Water vapour adsorption-desorption1
N2 adsorption/desorption and BET analysis at 77 K1
N2 sorption, BET surface-area analysis1
Pore size distribution from N2 sorption using BJH and HK methods1
N2 adsorption at 77 K; BET surface area; NLDFT pore-size distribution1
N2 adsorption-desorption, BET surface area and pore size distribution1
N2 adsorption-desorption isotherm and BET surface area.1
CO2 sorption; CO2-derived BET surface area1
CO2 and H2O vapour sorption; CO2-derived BET surface area1
N2 adsorption-desorption isotherm and BET surface area analysis1
N2 adsorption-desorption isotherms; BET surface area; NLDFT pore-size distribution1
N2 adsorption/desorption; BET and NLDFT analysis1
N2 adsorption, BET analysis1
N2 adsorption-desorption, BET surface area and BJH pore-size distribution1
N2 adsorption/desorption at 77 K; BET surface area; carbon-slit-pore NLDFT pore-size distribution1
CO2 and N2 sorption isotherms/selectivity1
H2 gas sorption isotherms1
N2 gas adsorption isotherms1
N2 sorption-desorption and pore-size distribution1
N2 sorption isotherms at 77 K; BET surface area and pore-size analysis using Micromeritics ASAP 20201
77 K N2 and 195 K CO2 adsorption isotherms1
Gas uptake after solvent-exchange activation1
N2 adsorption-desorption; BET surface area and pore-size analysis1
N2 adsorption-desorption / BET analysis (Autosorb IQ, 77 K; NLDFT pore-size modelling)1
Nitrogen gas adsorption isotherm1
N2 sorption BET/BJH1
N2 adsorption-desorption, BET surface area and pore-size distribution1
N2 physisorption / BET analysis1
N2 adsorption-desorption, BET surface area and Horvath-Kawazoe pore distribution1
Gas sorption isotherm and BJH pore-size distribution1
N2 adsorption/desorption at 77 K1
N2 adsorption-desorption and BET/BJH/Saito-Foley pore analysis1
N2 adsorption/desorption, BET surface area, BJH pore-size distribution1
N2 adsorption-desorption BET and BJH pore-size distribution1
nitrogen adsorption/desorption BET1
N2 adsorption-desorption isotherms and BET surface area1
N2 adsorption/desorption and BJH pore-size distribution1
N2 adsorption isotherm / BET1
N2 adsorption/desorption and BET/BJH analysis1
ICP Co content, elemental-analysis N content, BET surface area, t-Plot micropore volume and BJH mesopore volume1
N2 adsorption-desorption; BJH, NLDFT and BET analysis1
N2 adsorption/desorption isotherms; BET surface area1
N2 adsorption/desorption; BET and pore-size distribution using Micromeritics ASAP 20201
BET surface area comparison1
CO2 sorption1
N2 adsorption/desorption isotherms1
N2 and CO2 gas adsorption1
Benzene and water vapour adsorption1
N2 adsorption/desorption and CO2 adsorption1
N2 adsorption/desorption; BET surface area and BJH pore analysis1
BET adsorption-desorption and BJH pore size distribution1
N2 adsorption/desorption isotherm on Quantachrome Autosorb Gas Sorption analyser IQ21
N2 adsorption-desorption, JWGB analyser; BET equation1
Post-soaking XRD, N2 adsorption, and FT-IR1
N2 adsorption-desorption at 77 K; BET and pore-size distribution1
N2 adsorption-desorption at 77 K; BET and NLDFT pore-size distribution1
Surface area measurements1
nitrogen gas adsorption/desorption isotherm1
water vapour adsorption/desorption isotherms using BELSORP18-PLUS1
N2 adsorption-desorption, BET1
N2 sorption, BET analysis, DFT pore-size fitting1
N2 adsorption/BET/NLDFT1
N2 adsorption isotherms at 77 K, BELSORP-max; BET surface area1
Organic vapour adsorption isotherms at 298 K, BELSORP-max1
SEM, TEM, XRD, N2 BET1
XPS, TG analysis, N2 adsorption/desorption BET1
TG analysis, Raman spectroscopy, N2 BET1
N2 sorption and pore size distribution1
Brunauer-Emmett-Teller gas adsorption / pore-size analysis1
N2 adsorption-desorption; BET and BJH desorption analysis1
N2 and water vapour sorption1
N2 adsorption-desorption isotherms; BET surface area and pore analysis1
N2 adsorption isotherms at 77 K1
N2 adsorption/desorption; BET specific surface area; TriStar 30201
N2 adsorption-desorption at 77 K, Micromeritics ASAP 2050; BJH pore-size analysis1
N2 adsorption-desorption and PLATON solvent-accessible void analysis1
N2 adsorption-desorption isotherm, BJH pore size distribution and BET surface area1
SEM, PXRD, and N2 sorption/BJH porosity1
Oxygen adsorption1
nitrogen adsorption-desorption and pore-size distribution analysis1
N2 adsorption-desorption and DFT pore volume1
N2 adsorption/desorption isotherm; BET surface area; BJH pore size distribution; Zeo++ pore diameter from crystal structure1
N2 adsorption/desorption; BET analysis1
inferred microporosity; no direct pore-size or surface-area measurement1
N2 sorption at 77 K; BET1
N2 sorption at 77 K; BET and NLDFT1
N2 adsorption-desorption, BET and BJH analysis1
N2 adsorption/desorption at 77 K; BET/NLDFT1
N2 adsorption-desorption isotherm; DFT and Horvath-Kawazoe pore analysis1
N2 adsorption-desorption; BET surface area; BJH pore model1
N2 adsorption-desorption; BET surface area; NLDFT pore distribution1
XRD, FTIR, SEM, TEM/EDS, TGA, ICP, XPS, Raman, BET1
Brunauer-Emmett-Teller (BET) nitrogen adsorption-desorption; DFT pore size distribution1
CO2 adsorption1
N2 adsorption isotherm analysed by BET1
N2 adsorption isotherm, BET analysis; Zeo++ geometric analysis1
BET nitrogen adsorption on TriStar 3000 after activation1
BET nitrogen adsorption on TriStar 30001
N2 adsorption-desorption isotherms; BET surface area; pore size distribution1
Brunauer-Emmett-Teller nitrogen adsorption (Quantachrome Autosorb-iQ)1
N2 sorption at 77 K1
N2 adsorption-desorption/BET/BJH1
N2 and CO2 adsorption1
CO2 gas adsorption isotherm1
N2 adsorption/desorption and HK pore-size distribution1
N2 sorption isotherm at 77 K, BET and DFT pore-size analysis1
Qualitative porosity inferred from MOF structure/SEM; no BET measurement reported1
BET surface-area measurement after thermal activation attempt1
N2 adsorption-desorption BET, Micromeritics ASAP 20201
N2 adsorption/desorption, BET surface area, pore-size distribution1
N2 adsorption-desorption/BET and pore-size distribution1
N2 adsorption-desorption isotherms; BET and NLDFT analysis1
Nitrogen adsorption-desorption / BET analysis1
N2 sorption isotherms1
N2 sorption isotherms at 77 K1
N2 adsorption-desorption at 77 K; NLDFT pore-size analysis1
N2 adsorption and NLDFT pore-size analysis1
Nitrogen adsorption/desorption isotherms at 77 K1
N2 adsorption/desorption; BET surface area and pore size distribution1
Gas sorption; CO2 adsorption/desorption and N2 sorption1
N2 adsorption-desorption isotherm, BET surface area, Saito-Foley pore-size distribution1
N2 adsorption/desorption pore-size distribution1
Nitrogen adsorption-desorption isotherm; BET and BJH analyses1
CO2 adsorption isotherm (Micromeritics ASAP 2020)1
Surface area measurement reported from previous work.1
N2 adsorption-desorption; BET and Horvath-Kawazoe analysis1
Literature-reported BET surface area and crystallographic density used for normalisation1
N2 sorption at 77 K; BJH and Horvath-Kawazoe pore-size analysis1
Brunauer-Emmett-Teller (BET) surface area and pore-size analysis1
Nitrogen adsorption-desorption isotherm and pore-size analysis1
Nitrogen sorption BET/BJH analysis1
Pore-size/selective-impregnation inference from donor uptake experiments1
CO2 adsorption/sorption isotherm1
Water vapour sorption isotherm, static volumetric method1
N2 and CO2 gas adsorption isotherms1
nitrogen adsorption/desorption and BJH pore-size analysis1
BET specific surface area1
N2 adsorption/desorption, BET, BJH pore distribution1
BET N2 adsorption, Microtrac MRB BELSORP MAX1
Water vapour adsorption gravimetry1
N2 adsorption-desorption at 77 K; BET, t-plot and BJH analysis1
N2 adsorption-desorption with BET/BJH analysis1
N2 adsorption isotherm with BET surface area and NLDFT pore volume1
N2 sorption isotherm and DFT pore width distribution1
Structural pore-size assessment from prior crystal structure/geometric analysis1
XRD, nitrogen sorption and TGA1
Nitrogen and krypton sorption; BET and NLDFT pore-size analysis1
Brunauer-Emmett-Teller N2 adsorption/desorption and NLDFT pore-size analysis1
N2 sorption BET surface area and DFT pore-size distribution1
BET pore distribution1
CO2 sorption / BET surface area1
CO2 adsorption-desorption isotherms; BET analysis1
N2 sorption, BET, NL-DFT pore-size distribution, CO2 sorption1
Nitrogen sorption/BET1
Water vapour adsorption1
N2 adsorption/desorption and PLATON extra-framework volume calculation1
water vapour adsorption-desorption isotherm1
N2 adsorption-desorption with BET surface-area and NLDFT pore-size analysis1
Brunauer-Emmett-Teller nitrogen adsorption1
195 K CO2 adsorption1
N2 adsorption-desorption isotherm; BET surface area and pore-size analysis1
N2 adsorption/desorption, BET surface area and QSDFT pore-size analysis1
Nitrogen adsorption-desorption isotherms; BET surface area; NLDFT pore-size distribution1
N2 adsorption-desorption; BET surface area and BJH pore size1
BET N2 adsorption/desorption and pore size distribution1
Water sorption isotherm1
N2 adsorption at 77 K and TGA1
N2 sorption BET surface area and isotherm1
BET surface area and pore-size context from cited prior characterisation1
N2 adsorption-desorption with BET and NLDFT analysis1
N2 adsorption at 77 K; CO2 adsorption at 273 and 298 K; BET and QS-DFT analysis1
N2 adsorption-desorption; NLDFT pore-size distribution1
Single-component volumetric gas sorption isotherms and isobars1
N2 adsorption/desorption at 77 K; BET and NLDFT pore-size analysis1
N2 adsorption/desorption at 77 K; BET analysis; pore-size distribution1
CO2 adsorption/desorption1
Water vapour adsorption/desorption1
N2 adsorption-desorption isotherm and NLDFT pore size distribution1
N2 adsorption-desorption BET/BJH, ASAP 20201
RASPA molecular simulations; Widom insertion with He probe; Monte Carlo accessible surface and Gelb-Gubbins pore-size distribution1
N2 adsorption-desorption isotherm and BJH pore-size distribution1
N2 sorption at 77 K; BET surface area; QSDFT pore-size distribution1
CO2 adsorption/desorption isotherm and BET analysis1
Water vapour adsorption/desorption isotherms by BELSORP-max1
Nitrogen gas adsorption, Brunauer-Emmett-Teller (BET)1
N2 gas adsorption and NLDFT pore-size-distribution analysis1
N2 adsorption/desorption, BET and DFT pore model1
N2 gas sorption/BET surface area1
NH3 and amine vapour adsorption/desorption isotherms1
N2 adsorption-desorption/BET1
Reported pore-size comparison table1
N2 gas adsorption / BET1
N2 adsorption-desorption at -196 C; BET surface area and BJH pore-size analysis1
TEM/HRTEM and N2 adsorption-desorption1
XPS before/after NH3 adsorption1
NH3 vapour adsorption/desorption isotherm; 3H-2000P multistation weight method analyser1
H2O vapour adsorption/desorption isotherm; 3H-2000P multistation weight method analyser1
N2 adsorption-desorption; BET analysis; pore-size distribution1
water vapour adsorption1
N2 adsorption / BET surface area1
N2 adsorption-desorption, BET surface area and DFT pore-size distribution1
N2 adsorption1
N2 sorption isotherm1
post-photocatalysis N2 adsorption, PXRD, SEM/TEM-EDS1
X-ray diffraction and BJH adsorption pore-diameter analysis1
Humidity-variable photoluminescence coupled to DVS1
N2 adsorption-desorption; BET/BJH/DFT analysis1
Argon adsorption-desorption isotherm; BET/BJH analysis1
N2 adsorption-desorption BET/BJH analysis (ASAP2460)1
Nitrogen adsorption/desorption and BET/QSDFT analysis1