Electrical Transport — Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices

Measurement evidence

Electrical Transport

Dual-metal sites enable conductive metal-organic frameworks with extraordinary high capacitance for transparent energy storage devices · Zhao C.-E., Wang S., Chen S. et al. · Chemical Science · 2025 · 9276-9283

2 measurement groups · 6 results

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

Four-point probe electrical conductivity on pressed powder pellets

CuNi-HHTP nanorods · Powder

Pellets pressed at about 1 GPa; conductivity calculated from resistance and thickness.

Geometry
pressed powder pellet
Context
pristine framework and controls
Measurement source
S3-S4 · Electrochemical Measurements
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu-HHTP electrical conductivity6.1 x 10^-3 S m^-1Text
Exact Reported
p004 / 9279 · Results and discussion · Fig. 3b
CuNi-HHTP electrical conductivityMarked as a best value within this paper1.6 x 10^-2 S m^-1Text
Exact Reported
p004 / 9279 · Results and discussion · Fig. 3b
Ni-HHTP electrical conductivity8.3 x 10^-3 S m^-1Text
Exact Reported
p004 / 9279 · Results and discussion · Fig. 3b

Four-probe sheet resistance

CuNi-HHTP nanorods · Powder

Sheet resistance of c-MOF electrodes.

Geometry
electrode sheet
Context
pristine framework and controls
Measurement source
p004 / 9279 · Results and discussion · Fig. 3a
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Cu-HHTP sheet resistanceabout 12.3 ohm sq-1 from Fig. 3aVisual Estimate
Approximate
p004 / 9279 · Results and discussion · Fig. 3a
CuNi-HHTP sheet resistanceMarked as a best value within this paper8.0 ohm sq-1Text
Exact Reported
p004 / 9279 · Results and discussion · Fig. 3a
Ni-HHTP sheet resistanceabout 10.5 ohm sq-1 from Fig. 3aVisual Estimate
Approximate
p004 / 9279 · Results and discussion · Fig. 3a