Dynamic tuning of acidic oxygen evolution reaction pathways in Ru catalysts via Cu-induced surface restructuring

  • Yoon, Hyunseok; 
  • Song, Hee Jo; 
  • Park, Yumin; 
  • Haryanto, Andi; 
  • Kim, Dohun; 
  • ... Kim, Dong-Wan; 
  • 외 4명
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초록

Achieving both high activity and long-term stability for the oxygen evolution reaction (OER) in acidic media remains a critical challenge for proton exchange membrane water electrolyzers (PEM-WEs). In this study, we proposed a Cu-incorporated ruthenium (Ru) catalyst (CuRu-250) that exhibited superior performance via dynamic surface modulation during operation. Rather than serving solely as a static dopant, Cu actively influenced the catalyst surface by undergoing partial dissolution and inducing surface restructuring. This dynamic behavior enabled pathway tuning from the adsorbate evolution mechanism to the oxide path mechanism, enhancing the intermediate turnover and suppressing the overoxidation of Ru. Consequently, CuRu-250 demonstrated markedly improved durability and competitive activity compared to undoped Ru and commercial RuO2. Single-cell PEMWE tests validated its catalytic performance under realistic conditions. These findings highlight the role of active dopant behavior in tuning acidic OER pathways and improving electrochemical resilience, thus offering a practical strategy for advanced catalyst design. (c) 2026, Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.

키워드

Ruthenium; Dynamic surface restructuring; Oxygen evolution reaction; Proton exchange membrane water; electrolyzer; Oxide path mechanism; STABILITY CHALLENGES; RUTHENIUM OXIDE; ELECTROCATALYSIS; OXIDATION
제목
Dynamic tuning of acidic oxygen evolution reaction pathways in Ru catalysts via Cu-induced surface restructuring
저자
Yoon, Hyunseok; Song, Hee Jo; Park, Yumin; Haryanto, Andi; Kim, Dohun; Cho, Kyuri; Kim, Chanyeon; Kim, Wooyul; Lee, Chan Woo; Kim, Dong-Wan
DOI
10.1016/S1872-2067(26)64970-4
발행일
2026-04
유형
Article
저널명
Chinese Journal of Catalysis
권
83
페이지
363 ~ 375