析氧
电解水
钌
氧化还原
催化作用
质子交换膜燃料电池
无机化学
电解
氧化钌
阳极
化学
分解水
聚合物电解质膜电解
材料科学
化学工程
质子输运
氧化物
膜
吸附
制氢
质子
电催化剂
氧气
光化学
氢
Pourbaix图
作者
G. T. Li,Guidong Xu,Shuo Geng
出处
期刊:Chemsuschem
[Wiley]
日期:2026-07-02
卷期号:19 (13): e70816-e70816
摘要
Proton exchange membrane water electrolysis (PEMWE) is a leading route to low-carbon hydrogen, yet its anodic oxygen evolution reaction (OER) remains constrained by the scarcity and instability of noble-metal catalysts under strongly acidic, high-current operation. Ruthenium oxides are attractive alternatives to iridium-based anodes because of their high intrinsic activity, but they face a fundamental activity-durability trade-off: kinetic acceleration often coincides with oxygen-anion redox, vacancy accumulation, overoxidation, and Ru dissolution. This review argues that recent progress in Ru-based acidic OER catalysts is best understood through a mechanism-guided framework that links proton management, interfacial water organization, metal-oxygen redox buffering, regulation of oxygen balance, and cooperative O-O coupling. We show that acidic PEM OER is governed not only by adsorption energetics, but also by the coupled evolution of the catalyst-ionomer-water microenvironment and the Ru-O redox manifold. We further discuss how these design levers redistribute competition among the adsorbate evolution mechanism, lattice-oxygen-mediated pathways, and dual-site coupling routes, and how theory and operando methods guide translation from half-cells to membrane electrode assemblies (MEAs) while establishing mechanism-aware durability benchmarks.
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