Electrochemistry Application — NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation

Measurement evidence

Electrochemistry Application

NiCo-MOFs in situ anchored on graphdiyne with metal-like properties form a strongly coupled electron transport interface and construct an ohmic contact to achieve efficient charge-hole spatial separation · Liu Z., Wang J., Liu G. et al. · Nanoscale · 2024 · 19322-19334

7 measurement groups · 11 results

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

photocatalytic hydrogen evolution

Cu-GDY (CG) · Powder

TEOA sacrificial system, 5 h; visible-light photocatalytic test conditions not fully reported in main text

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
CG component control
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
CG 5 h hydrogen evolutionabout 112.22/47.0 = 2.39 umolCalculated From Reported
Approximate
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a

photocatalytic hydrogen evolution

pure NiCo-MOF (NC) · Powder

TEOA sacrificial system, 5 h; visible-light photocatalytic test conditions not fully reported in main text

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
pristine MOF control
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NC 5 h hydrogen evolution6.89 umolText
Exact Reported
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a

photocatalytic hydrogen evolution

NCCG-10 · Powder

TEOA sacrificial system, 5 h; NCCG-X series

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
composite series
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NCCG-10 5 h hydrogen evolutionapproximately 102 umol from Fig. 6bvisual estimateVisual Estimate
Approximate
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b

photocatalytic hydrogen evolution

NCCG-15 · Powder

TEOA sacrificial system, 5 h; NCCG-X comparison and pH tests

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
target composite
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NCCG-15 5 h hydrogen evolutionMarked as a best value within this paper112.22 umolText
Exact Reported
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a,b
NCCG-15 improvement over CGMarked as a best value within this paperabout 47.0 timesText
Rounded Reported
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a
NCCG-15 improvement over NCMarked as a best value within this paperabout 16.3 timesText
Rounded Reported
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6a
NCCG-15 hydrogen evolution at pH 9Marked as a best value within this paper112.22 umolFigure Axis
Rounded Reported
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6d
NCCG-15 cyclic hydrogen evolution retentionabout 99.07% after four 5 h cyclesText
Exact Reported
7 · Photocatalytic hydrogen evolution activity analysis · Fig. 6c

photocatalytic hydrogen evolution

NCCG-20 · Powder

TEOA sacrificial system, 5 h; NCCG-X series

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
composite series
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NCCG-20 5 h hydrogen evolutionapproximately 101 umol from Fig. 6bvisual estimateVisual Estimate
Approximate
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b

photocatalytic hydrogen evolution

NCCG-25 · Powder

TEOA sacrificial system, 5 h; NCCG-X series

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
composite series
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NCCG-25 5 h hydrogen evolutionapproximately 65 umol from Fig. 6bvisual estimateVisual Estimate
Approximate
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b

photocatalytic hydrogen evolution

NCCG-5 · Powder

TEOA sacrificial system, 5 h; NCCG-X series

Geometry
nine-channel photocatalytic hydrogen evolution test
Context
composite series
Measurement source
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
NCCG-5 5 h hydrogen evolutionapproximately 65 umol from Fig. 6bvisual estimateVisual Estimate
Approximate
6 · Photocatalytic hydrogen evolution activity analysis · Fig. 6b