析氧
脱质子化
吸附
化学
电负性
催化作用
氧气
动力学
化学工程
再分配(选举)
分解水
电荷(物理)
无机化学
化学动力学
可逆反应
物理化学
反应机理
氧化还原
化学物理
电催化剂
材料科学
氧化物
电解
作者
Yaojia Cheng,Jingkun Yu,Mengting Lu,Yongjuan Yuan,R Zhang,Zhiyong Tang,Hao Wang,Siyu Lu
摘要
ABSTRACT Although RuO 2 theoretically has superior oxygen evolution reaction (OER) activity and a relatively lower price than IrO 2 , balancing its activity and stability remains a significant challenge. The electronic structure of Ru centers plays a critical role in balancing the activity and durability of RuO 2 ‐based electrocatalysts for OER. This study developed an F‐doped RuO 2 loaded on TiO 2 (F‐RuO 2 @TiO 2 ) to construct a Ru–O–Ti interface platform for electronegativity‐mediated charge redistribution. F‐RuO 2 @TiO 2 exhibited excellent OER activity and superior durability, operating stably for 660 h and 253 h at 100 and 200 mA cm −2 , respectively. A proton exchange membrane water electrolyzer assembled using F‐RuO 2 @TiO 2 required only 1.57 and 1.68 V at 0.5 and 1 A cm −2 , respectively, and operated stably for 300 and 100 h, respectively. Both experimental and theoretical calculations showed that the high electronegativity of F enhances the Ru–O covalency, thereby accelerating the deprotonation of *OOH through the proton‐assisted adsorption evolution mechanism (PA‐AEM). Simultaneously, the dynamic charge redistribution established between Ru–O–Ti allowed TiO 2 to buffer charge fluctuations at Ru sites, thus further effectively mitigating over‐oxidation. These findings underscore the importance of electronegativity‐regulated proton‐transfer kinetics for stabilizing RuO 2 .
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