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Scalable synthesis and tensile-strain modulation of NiPt1 % alloy with enhanced large-current hydrogen evolution

  • Mingzhe Li
  • , Yunlong Wang
  • , Chenxuan Xie
  • , Xin Zhang
  • , Fengchun Zheng
  • , Yuzhen Lv*
  • , Nian Ran*
  • , Wei Zhou*
  • , Kepi Chen
  • , Jin Zhang
  • *此作品的通讯作者
  • North China Electric Power University
  • CAS - Shanghai Institute of Ceramics
  • University of Chinese Academy of Sciences

科研成果: 期刊稿件文章同行评审

摘要

Integrating strain engineering into the design and fabrication of large-area electrodes with highly efficient alkaline hydrogen evolution reaction (HER) performance is still a big challenge. Herein, a 6-meter-long CuNi/NiPt1 % alloy cathode with excellent performance has been synthesized through epitaxial growth on the surface of microcone array using our self-developed roll-to-roll electrodeposition system. It delivers ultralow overpotentials of 58.2 ± 4.5 and 158.2 ± 11.2 mV at 100 and 1000 mA cm−2, respectively, with a low Tafel slope of 28.5 mV dec−1 and an ultra-high mass activity of 64.7 mA μgPt−1 @ 100 mV. It maintains 99 % activity retention after 2000-h operation at 1 A cm−2 and withstands harsh industrial conditions including high-frequency fluctuating load (20–120 %, 1/20 Hz, 100 h) and ultrasonic cavitation (40 kHz, 300 W, 1 h). Multi-scale characterizations reveal that a 2.5 % tensile strain is induced by 50 nm-thick NiPt1 % alloy layers epitaxially grown on the CuNi alloy cone array. This tensile strain enhances the Volmer-Tafel kinetics by reducing activation energy by 26 % and increases surface *H coverage by 4.2-fold. DFT calculations further confirm it enables the transformation of non-spontaneous water dissociation into a spontaneous process, reducing the reaction's energy barrier by 30 %. Additionally, *H adsorption across all surface sites of NiPt1 % alloy is greatly enhanced, resulting in a reduction of 20 % in energy barrier for Tafel reaction. This work proposes a simple and scalable strategy for integrating strain engineering into alloy cathodes with excellent alkaline HER performance.

源语言英语
文章编号125809
期刊Applied Catalysis B: Environmental
381
DOI
出版状态已出版 - 2月 2026

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