Porosity — Field effect transistor based on proton conductive metal organic framework (CuBTC)

Measurement evidence

Porosity

Field effect transistor based on proton conductive metal organic framework (CuBTC) · Bodkhe G.A., Deshmukh M.A., Patil H.K. et al. · Journal of Physics D: Applied Physics · 2019 · 335105

1 measurement group · 4 results

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

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

Im@CuBTC powder/crystals · Powder

Samples degassed in vacuum; N2 adsorption at 77 K.

Temperature
77
Atmosphere
nitrogen adsorption
Context
Im@CuBTC compared against pristine CuBTC control.
Measurement source
rendered pages 6-7 / article pp. 5-6 · 3. Results and discussion · Figure 7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
CuBTC pore structure assignmentmicroporous structure with type-IV adsorption-desorption isothermQualitative
Qualitative
rendered page 7 / article p. 6 · 3. Results and discussion · Figure 7
CuBTC multipoint BET surface area1015.052 m2 g^-1Text
Exact Reported
rendered page 7 / article p. 6 · 3. Results and discussion · Figure 7
Im@CuBTC pore structure assignmentmesoporous structure with type-H4 isothermQualitative
Qualitative
rendered page 7 / article p. 6 · 3. Results and discussion · Figure 7
Im@CuBTC multipoint BET surface area50.467 m2 g^-1Text
Exact Reported
rendered page 7 / article p. 6 · 3. Results and discussion · Figure 7