催化作用
过电位
材料科学
吸附
电解水
分解水
化学工程
析氧
电解
化学物理
氢溢流
电荷(物理)
无机化学
表面电荷
缩放比例
调制(音乐)
纳米技术
电催化剂
作者
Ao Cai,Ding Zhou,Siyang Luo,Na Luo,Junhui Pei,Xiongfeng Zeng,Fengxiang Chen,Xiaoman Xiong,Weilin Xu,Na Yao
标识
DOI:10.1002/adfm.202515506
摘要
Abstract Tailoring the characteristics of hydroxyl intermediates ( * OH) on Ru‐based catalysts is vital for modulating catalytic pathways and optimizing their performance for water oxidation (OER); however, their modulation mechanisms and roles remain a significant challenge. Here, a strategy is proposed to regulate the * OH adsorption behavior of Ru‐based catalysts by designing RuMo@RuMoO x electrocatalysts with strong metal‐support interactions and built‐in charge gradients. Quasi‐in‐situ/operando characterization and theoretical calculations reveal that this design effectively promotes the adsorption of * OH at Ru sites, optimizes the orientation of * OH, and facilitates * OH spillover to the adjacent Mo sites via charge gradients between the Ru and Mo sites. This process initiates a hydroxyl migration‐coupled mechanism (HMCM), which breaks the * OH‐ * OOH scaling relation, alters the rate‐determining step (RDS), and stabilizes OER intermediates, thereby boosting the OER performance. The RuMo@RuMoO x catalyst exhibits low overpotentials of 166, 200, and 199 mV in 0.5 M H 2 SO 4 , 1 M KOH, and 1 M PBS, respectively, at 10 mA cm −2 , along with an outstanding stability of over 1000 h of operation. Furthermore, the RuMo@RuMoO x catalyst demonstrates a lower overpotential than RuO 2 and maintains stable operation for over 1000 h in a PEM water electrolyzer at 1 A cm −2 .
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