Electrical Transport — Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors

Measurement evidence

Electrical Transport

Enhanced conductivity and energy storing performances of 3D bimetallic conductive metal-organic frameworks based on linear π-conjugated thiazole for supercapacitors · Wang C., He Y., Xie J. et al. · Chemical Engineering Journal · 2025 · 167834

1 measurement group · 5 results

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

AC impedance conductivity of pressed pellets in a solid-state battery testing mould

NiCo-DPTTZ-MOF powder, ratio not defined · Powder

Pressed under 10 MPa; AC impedance amplitude 10 mV, frequency 100 kHz to 0.01 Hz; conductivity calculated as sigma = L/(R S).

Temperature
298.15
Context
pristine MOF powders
Measurement source
S3 · Materials and Characterization
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Co-DPTTZ-MOF room-temperature conductivity9.42 x 10-4 S m-1Text
Rounded Reported
5 · 3.2 · Fig. 2c; Table S2 referenced
Ni-DPTTZ-MOF room-temperature conductivity1.05 x 10-3 S m-1Text
Rounded Reported
5 · 3.2 · Fig. 2c; Table S2 referenced
Ni1Co1-DPTTZ-MOF room-temperature conductivity1.65 x 10-3 S m-1 (read from printed label in Fig. 2c)Figure Axis
Rounded Reported
4 · 3.1 · Fig. 2c
Ni1Co3-DPTTZ-MOF room-temperature conductivity1.24 x 10-3 S m-1 (read from printed label in Fig. 2c)Figure Axis
Rounded Reported
4 · 3.1 · Fig. 2c
Ni3Co1-DPTTZ-MOF room-temperature conductivityMarked as a best value within this paper2.21 x 10-3 S m-1Text
Rounded Reported
5 · 3.2 · Fig. 2c; Table S2 referenced