Applied Catalysis2022,Vol.30411.DOI:10.1016/j.apcatb.2021.120917

High-density ultrafine RuP2 with strong catalyst-support interaction driven by dual-ligand and tungsten-oxygen sites for hydrogen evolution at 1 A cm(-2)

Zhou, Ya-Nan Wang, Fu-Li Nan, Jun Zhao, Hui-Ying Wang, Feng-Ge Yu, Ning Luan, Ren-Ni Liu, Da-Peng Chai, Yong-Ming Dong, Bin
Applied Catalysis2022,Vol.30411.DOI:10.1016/j.apcatb.2021.120917

High-density ultrafine RuP2 with strong catalyst-support interaction driven by dual-ligand and tungsten-oxygen sites for hydrogen evolution at 1 A cm(-2)

Zhou, Ya-Nan 1Wang, Fu-Li 1Nan, Jun 1Zhao, Hui-Ying 1Wang, Feng-Ge 1Yu, Ning 1Luan, Ren-Ni 1Liu, Da-Peng 1Chai, Yong-Ming 1Dong, Bin1
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作者信息

  • 1. China Univ Petr East China
  • 折叠

Abstract

Ultrafine and high-density RuP2 based on coordination chemistry and catalyst-support correlation shows potential for hydrogen evolution reaction (HER). Herein, the uniform and high-density W-doped ultra-small RuP2 (W0.05-RuP2@C3N4-NC) are synthesized by incorporating oxygen-bridged [WO4] tetrahedron into tetraacetic acid (EDTA)-melamino-formaldehyde (MF) ligands. EDTA-MF shows strong metal-support interaction, dedicating to the optimal dispersion, highest Ru yields, and HER activity. W atoms regulate local electron structure and coordination environment, leading to faster proton supply and hydrogen release, thus achieving 10 mA cm(-2) at low overpotential of 27 mV (alkaline) and 66 mV (acidic). Notably, W-0.05-RuP2@C3N4-NC maintains stability with staged 500-1000 mA cm(-2) for 1000 h in alkaline, and 1000 mA cm(-2) for -300 h in acid, ascribing to the immobilized ultra-stable RuP2 nanoclusters via EDTA-MF and metal-oxygen sites. The excellent activity and stability hold promise for industrial hydrogen production, which provides deeper insights into catalyst-support interaction and reasonable design of high Ru-loading electrocatalysts.

Key words

Ultrafine RuP2/Dual-ligand/Metal-oxygen sites/W doping/Hydrogen evolution/EFFICIENT/NANOSHEETS

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出版年

2022
Applied Catalysis

Applied Catalysis

ISSN:0926-3373
被引量17
参考文献量45
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