Porosity — Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation

Measurement evidence

Porosity

Lowering Band Gap of an Electroactive Metal-Organic Framework via Complementary Guest Intercalation · Guo Z., Panda D.K., Gordillo M.A. et al. · ACS Applied Materials and Interfaces · 2017 · 32413-32417

2 measurement groups · 5 results

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

N2 sorption; BET surface-area analysis

Activated DSNDI-based MOF-74 powder · Powder

Activated MeOH-exchanged MOF powder, 40 mg, measured at 77 K after high-vacuum outgassing.

Temperature
77
Atmosphere
N2
Context
Pristine framework porosity
Measurement source
S-2 / render p002 · General Materials and Methods · Figure S3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Average pore diameterMarked as a best value within this paper~3.1 nmText
Approximate
p002 / article p.32414 · Main text
BET surface areaMarked as a best value within this paper2044 m2/gText
Exact Reported
p002 / article p.32414 · Main text · Figure S3
Pore volumeMarked as a best value within this paper1.01 cm3/gText
Exact Reported
p002 / article p.32414 · Main text · Figure S3

N2 sorption; BET surface-area analysis

TTF-doped DSNDI-based MOF-74 powder · Powder

TTF-doped MOF-74 compared with pristine activated sample at 77 K.

Temperature
77
Atmosphere
N2
Context
Guest-loaded target sample vs pristine control
Measurement source
p002 / article p.32414 · Main text · Figure S3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area after TTF loadingMarked as a best value within this paper1698 m2/gText
Exact Reported
p002 / article p.32414 · Main text · Figure S3
Pore volume after TTF loadingMarked as a best value within this paper0.85 cm3/gText
Exact Reported
p002 / article p.32414 · Main text · Figure S3