Epitaxial growth triggered core-shell Pd@RuP nanorods for high-efficiency electrocatalytic hydrogen evolution

被引:0
|
作者
Jiaqian Ding [1 ]
Xian Jiang [2 ]
Caikang Wang [2 ]
Zhuoya Zhu [1 ]
Chang Xu [1 ]
Yi Zhou [1 ]
Xuan Wang [1 ]
Qicheng Liu [1 ]
Zhenyuan Liu [3 ]
Yawen Tang [1 ]
Jun Lin [1 ]
Gengtao Fu [1 ]
机构
[1] Jiangsu Key Laboratory of New Power Batteries, Jiangsu Collaborative Innovation Center of Biomedical Functional Materials, School of Chemistry and Materials Science,Nanjing Normal University
[2] School of New Energy, Nanjing University of Science and Technology
[3] School of Materials Science and Engineering, Jiangsu University of Science and Technology
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TB383.1 []; TQ116.2 [氢气];
学科分类号
摘要
Ru with Pt-like hydrogen bond strength,knockdown cost(~1/3 of Pt),and eximious stability is a competitive replacement for Pt-based catalysts towards the hydrogen evolution reaction(HER) in water splitting.The design of Ru-based catalysts via interface construction,crystal phase control,and specific light element doping to realize the impressive promotion of limited activity and stability remains challenging.Herein,we report the fabrication of Pd@RuP core-shell nanorods(NRs) via an epitaxial growth method,where ultrathin RuP shells extend the face-centered cubic(fcc) crystal structure and(111) plane of the Pd NRs core.Density functio nal theory results confirm that the core-s hell interface engineering and P doping synergistically accelerate electron transfer and moderate the d-band center to generate a suitable affinity for H*,thus optimizing HER kinetics.Compared with Pd@Ru NRs and Pt/C,the Pd@RuP NRs exhibit preferable electrocatalytic stability and superior activity with a low overpotential of 18 mV at 10 mA cm-2in the alkaline HER process.Furthermore,the integrated Pd@RuP//RuO2-based electrolyzer also displays a low operation potential of 1.42 V to acquire 10 mA cm-2,demonstrating great potential for practical water electrolysis.Our work presents an efficient avenue to design Ru-based electrocatalysts via epitaxial growth for extraordinary HER performance.
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页码:510 / 517
页数:8
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