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高传博

教授 博士生导师 硕士生导师

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  • 学历: 博士研究生毕业
  • 学位: 博士

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Adv Sustainable Syst: High-entropy alloy nanowires for efficient and durable HOR, by Chunxia et al.

发布时间:2025-04-16
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发布时间:
2025-04-16
文章标题:
Adv Sustainable Syst: High-entropy alloy nanowires for efficient and durable HOR, by Chunxia et al.
内容:

Chunxia's paper is accepted for publication in Advanced Sustainable Systems. Congratulations on the nice work!

 

Title: High-Entropy Alloy Nanowires for Efficient and Durable Hydrogen Oxidation Reaction

Authors: Chunxia Wu, Fangpu Zhang, Tao Sun, Zhixue Zhang, Junlin She, Zerui Mu, Zhaoyu Wang, Yuening Liang, Zhaojun Liu, and Chuanbo Gao*

Link to the Publisher: https://advanced.onlinelibrary.wiley.com/doi/10.1002/adsu.202500381

 

Abstract: High-entropy alloy nanowires (HEA NWs) hold significant promise for achieving exceptional catalytic activity and stability, owing to their unique one-dimensional morphology and the electronic engineering potential of the HEAs. However, the controlled synthesis of HEA NWs remains a challenge. In this work, we report a novel wet-chemical approach for the synthesis of ultrathin HEA NWs, represented by PtRuNiCuPb, through an active-hydrogen (H·)-mediated reduction mechanism. The H· species, generated by organic dehydrogenation, facilitate the effective co-reduction of metal salts with differing reduction potentials, while the mild synthesis conditions ensure morphology control toward nanowire formation. The resulting PtRuNiCuPb HEA NWs exhibit remarkable catalytic activity in electrocatalytic hydrogen oxidation reaction (HOR) in alkaline media, due to their multimetallic compositions and abundant grain boundaries. At 50 mV, the specific and mass activities reach 8.46 mA cm-2 and 5.54 A mgPt+Ru-1, respectively, ~11.3 and 14.5 times greater than those of commercial Pt/C. Thanks to the unique one-dimensional morphology, the PtRuNiCuPb HEA nanowires demonstrate excellent catalytic stability, retaining 97% of their initial mass activity after 20,000 cycles of accelerated durability testing. These findings offer a promising strategy for designing highly efficient and durable catalysts using HEA compositions and one-dimensional morphologies for electrocatalytic applications.