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首页> 外文期刊>Materials Chemistry Frontiers >Exceptional alkaline hydrogen evolution by molybdenum-oxide-nitride-based electrocatalysts with fast water-dissociation and hydrogen-adsorption kinetics
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Exceptional alkaline hydrogen evolution by molybdenum-oxide-nitride-based electrocatalysts with fast water-dissociation and hydrogen-adsorption kinetics

机译:氧化钼氮化物基电催化剂具有快速的水解离和氢吸附动力学,具有出色的碱性析氢性能

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摘要

Molybdenum (Mo)-based electrocatalysts have substantially shown impressive electrocatalytic properties towards alkaline hydrogen evolution (HER) catalysis. Herein, a Mo-based nitride/oxide engineered-type electrocatalyst, denoted as Ni0.2Mo0.8N/MoO2, is grown on nickel foam and shows an extraordinary HER performance in 1.0 M KOH. The in situ Ni0.2Mo0.8N/MoO2 interfacial nanorods are formed through a nitridation process of the precursor. The optimized electrocatalyst exhibits an ultralow overpotential of 13 mV at a current density of 10 mA cm2, which is superior to those of the corresponding oxide counterpart (NiMoO4/MoO2, 162 mV) and the benchmark Pt/C catalyst (27 mV). Density functional theory (DFT) calculations show that MoO2 remarkably enhances the H2O dissociation kinetics with a lower energy barrier of 0.09 eV compared to Ni0.2Mo0.8N at 0.39 eV, while Ni0.2Mo0.8N significantly reveals a very favorable H adsorption energy of 0.08 eV compared to MoO2 at 0.23 eV, leading to accelerated H2O dissociation and hydrogen adsorption/desorption kinetics of the Ni0.2Mo0.8N/MoO2 catalyst. The present work offers an effective pathway for the rational design of highly efficient HER electrocatalysts.
机译:钼(Mo)的electrocatalysts充分显示electrocatalytic令人印象深刻对碱性氢进化属性(她)催化。engineered-type electrocatalyst,表示Ni0.2Mo0.8N / MoO2镍泡沫和种植显示了非凡的她的表演在1.0 MKOH。纳米棒是通过氮化过程形成的的前兆。展示一个超低超电势的13个mV电流密度的10马cm2优越相应的氧化物催化剂(27号)。计算表明,MoO2显著增强水分离动力学能量较低0.09 eV Ni0.2Mo0.8N相比的屏障0.39电动汽车,而Ni0.2Mo0.8N明显显示一个非常有利的H吸附能量0.08 eV在0.23 eV MoO2相比,导致加速水分离和氢吸附/解吸的动力学Ni0.2Mo0.8N / MoO2催化剂。提供了一个合理有效的途径设计高效electrocatalysts。

著录项

  • 来源
    《Materials Chemistry Frontiers》 |2023年第13期|2683-2692|共10页
  • 作者单位

    Guangxi Academy of Sciences, Nanning, Guangxi 530007, China.;

    College of Materials Science and Engineering, Hunan Joint International Laboratory of Advanced Materials and Technology for Clean Energy, Hunan University, Changsha, 410082, P. R. China.;

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  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类 化学;
  • 关键词

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