Porosity — High electrical conductivity and high porosity in a Guest@MOF material: Evidence of TCNQ ordering within Cu3BTC2 micropores

Measurement evidence

Porosity

High electrical conductivity and high porosity in a Guest@MOF material: Evidence of TCNQ ordering within Cu3BTC2 micropores · Schneider C., Ukaj D., Koerver R. et al. · Chemical Science · 2018 · 7405-7412

1 measurement group · 6 results

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

N2 adsorption/BET surface area

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.

Temperature
77
Atmosphere
N2 adsorption; samples handled as guest-loaded MOF powders
Context
pristine and guest-loaded MOF powders
Measurement source
7407, 7410 · Results and Experimental - Porosimetry measurements · Figure 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area of 0.5TCNQ@Cu3BTC21145 m2 g^-1Text
Rounded Reported
7407 · Results · Figure 3
BET surface area of 1.0TCNQ@Cu3BTC2573.7 m2 g^-1Text
Exact Reported
7405, 7407 · Abstract/Results · Figure 3
BET area linear fit slopeA_BET/m2 g^-1 = 1784.29 - 1253.17x, R = 0.992Figure Axis
Rounded Reported
7407 · Results · Figure 3
Theoretical BET area if 1.0 TCNQ does not penetrate MOF1370.4 m2 g^-1Calculated From Reported
Exact Reported
S4 · Theoretical BET surface area if TCNQ does not penetrate the MOF · Figure S5
BET surface area of pristine Cu3BTC2Marked as a best value within this paper1833.0 m2 g^-1Text
Exact Reported
7407 · Results · Figure 3
Relative TCNQ weight percentage in 1.0TCNQ@Cu3BTC225.2%Text
Exact Reported
S4 · Theoretical BET surface area if TCNQ does not penetrate the MOF