Porosity — Super Proton Conductivity Through Control of Hydrogen-Bonding Networks in Flexible Metal–Organic Frameworks

Measurement evidence

Porosity

Super Proton Conductivity Through Control of Hydrogen-Bonding Networks in Flexible Metal–Organic Frameworks · Kwon N.H., Han S., Kim J. et al. · Small · 2023 · 2301122

2 measurement groups · 5 results

Reported values remain attached to the sample, method, conditions, extraction quality and source location that produced them.

Nitrogen sorption/BET

MIL-88B · Powder

N2 sorption at 77 K using Micromeritics Tristar II 3020; BET surface area and pore-size distribution.

Temperature
77
Context
pristine frameworks
Measurement source
S4; S8-S9 · Characterization; Results and Discussion · Figures S3-S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
MIL-88B BET surface area347.73Text
Exact Reported
S8 · Results and Discussion · Figure S3
MIL-88B-NH2 BET surface area29.66Text
Exact Reported
S8 · Results and Discussion · Figure S3
MIL-88B-SO3H BET surface area386.69Text
Exact Reported
S8 · Results and Discussion · Figure S3
Functionalised MIL-88B free aperture range3 to 5.5Text
Range
S9 · Results and Discussion · Figure S4
MIL-88B-SO3H pore width5.8Text
Exact Reported
S9 · Results and Discussion · Figure S4

Water vapour adsorption

Im@MIL-88B-LB · Powder

Water vapour adsorption/desorption at 298 K for pristine and imidazole-loaded samples.

Temperature
298
Atmosphere
water vapour
Context
sorption vs conductivity
Measurement source
S4; S19; S23 · Characterization; Results and Discussion · Figures S12, S15
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource