2018
DOI: 10.1002/aenm.201800575
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A New Platinum‐Like Efficient Electrocatalyst for Hydrogen Evolution Reaction at All pH: Single‐Crystal Metallic Interweaved V8C7 Networks

Abstract: COMMUNICATION 1800575 (1 of 7)

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Cited by 67 publications
(41 citation statements)
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“…Figure b represents that η@10 mA cm −2 of h‐MoN@BNCNT in neutral solution is 143 mV and the Tafel slope is 135 mV per decade, while η@10 mA cm −2 of h‐MoN@BNCNT in alkaline solution exhibits 118 mV with Tafel slope of 59 mV per decade, as shown in Figure c. To sum up, the trend of η@10 mA cm −2 and Tafel slope tend to first rise and then descend with increasing pH value, which was also reported by other groups . It is obvious that η@10 mA cm −2 and Tafel slope of h‐MoN@BNCNT will be the closest to those of Pt/C when pH is 7.…”
Section: Resultssupporting
confidence: 72%
“…Figure b represents that η@10 mA cm −2 of h‐MoN@BNCNT in neutral solution is 143 mV and the Tafel slope is 135 mV per decade, while η@10 mA cm −2 of h‐MoN@BNCNT in alkaline solution exhibits 118 mV with Tafel slope of 59 mV per decade, as shown in Figure c. To sum up, the trend of η@10 mA cm −2 and Tafel slope tend to first rise and then descend with increasing pH value, which was also reported by other groups . It is obvious that η@10 mA cm −2 and Tafel slope of h‐MoN@BNCNT will be the closest to those of Pt/C when pH is 7.…”
Section: Resultssupporting
confidence: 72%
“…The Mn 3s peak (Figure c) shows two multiplet split components, which are caused by 3s–3d electronic coupling (peak separation: 5.9 eV); this indicates the presence of Mn II in MnO (expected peak separation: 6.0 eV) . The deconvoluted V 2p spectrum (Figure d) indicates the presence of V−C (carbide) bonds, which is in line with the formation of V 8 C 7 , as well as peaks assigned to V 2p 3/2 and V 2p 1/2 . Analysis of the deconvoluted C 1s spectrum (Figure e) indicates the presence of C−C, C−V, C−O−C, and O−C=O, respectively.…”
Section: Resultsmentioning
confidence: 72%
“…[6][7][8] The scarcity and high cost of Pt, however, greatly restrict the use of Pt-based electrocatalysts in mass industrial production. To solve this issue, a variety of transition-metal-based HER catalysts have been developed, [9,10] including metal carbides, [11][12][13] selenides, [14,15] phosphides [16,17] and chalcogenides. [18,19] However, there are still challenges in achieving the low-cost electrocatalysts with high catalytic activity and stability matching those of Pt-based electrocatalysts.…”
Section: Introductionmentioning
confidence: 99%