过电位
析氧
二聚体
材料科学
联轴节(管道)
催化作用
氧气
电子结构
机制(生物学)
化学物理
工作(物理)
光化学
质子
质子交换膜燃料电池
质子输运
反应机理
纳米技术
分解水
设计要素和原则
电催化剂
分子氧
活动站点
密度泛函理论
膜
合理设计
感应耦合
偶联反应
氧原子
化学工程
激进的
作者
Jun Qi,Jiawei Ge,Jilong Xu,Wenguang Zhao,Haihua Luo,Y H Li,Zhongjie Lai,Lisheng Qian,Jiaxiang Lu,Zuohuan Chen,Chunzhen Yang,Bingbao Mei,Guiqiang Li,Junjie Ge,Yifan Ye
摘要
ABSTRACT Driving the oxygen evolution reaction (OER) through an oxide‑path mechanism (OPM) offers an appealing route to achieve simultaneously high activity and durability, yet rational modulation of dual‑metal active sites remain elusive. Here, we realize an unprecedented switch from the conventional adsorbate evolution mechanism (AEM) to OPM in 6H‐SrIrO 3 via partial La substitution. Electronic structure analysis reveals that La incorporation strengthens electronic coupling across face‐sharing IrO 6 dimers via Ir–O–Ir bridge. Consequently, these dimers, characterized by short Ir–Ir interatomic distances, are activated as dual‐metal centers that enable oxygen radical coupling via the OPM pathway. Benefiting from this mechanistic transition, the optimized 2%La–SrIrO 3 catalyst surpasses the activity–stability trade‑off, exhibiting a low overpotential and exceptional durability over 1900 h at 1 A cm −2 in a proton exchange membrane (PEM) electrolyzer. This work unveils a mechanistic design paradigm for robust OER electrocatalysts operating under acidic conditions.
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