Porosity — Novel semiconducting iron–quinizarin metal–organic framework for application in supercapacitors*

Measurement evidence

Porosity

Novel semiconducting iron–quinizarin metal–organic framework for application in supercapacitors* · Agrawal S., Clarke S.M., Vitorica-Yrezabal I.J. et al. · Molecular Physics · 2019 · 3424-3433

2 measurement groups · 2 results

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

BET nitrogen adsorption on TriStar 3000 after activation

activated FeQ material for BET · Powder

Activated by solvent exchange followed by heating in vacuo; nitrogen adsorption at -195.8 deg C

Temperature
77.35
Atmosphere
N2 adsorptive
Geometry
activated powder adsorption isotherm
Context
activated pristine FeQ
Measurement source
p003 · Figure S4 · Figure S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET specific surface area after activationMarked as a best value within this paper40 m2 g-1rounded whole numberSI Table
Rounded Reported
p003 · Figure S4 · Figure S4

BET nitrogen adsorption on TriStar 3000

as-synthesised FeQ black precipitate / powder with small crystals · Powder

Nitrogen gas adsorptive at -195.8 deg C (liquid nitrogen temperature)

Temperature
77.35
Atmosphere
N2 adsorptive
Geometry
powder adsorption isotherm
Context
pristine as-synthesised FeQ
Measurement source
p007 · 2.3. Characterisation of materials
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET specific surface area of as-synthesised FeQ29.49 m2 g-1Text
Exact Reported
p008 · 4. Results · Figure S4 referenced