氯
材料科学
电化学
选择性
动力学
尖晶石
催化作用
电极
联轴节(管道)
格子(音乐)
电子结构
合理设计
结晶学
化学物理
化学工程
电子效应
阳极
晶体结构
无机化学
过渡金属
八面体
化学
锰
工作(物理)
作者
Haiming Gong,Zhenrui Ni,Guoen Tang,Jianjun Zhang,Hermenegildo García,Panyong Kuang,Jiaguo Yu
出处
期刊:Small
[Wiley]
日期:2026-05-24
卷期号:: e73962-e73962
摘要
ABSTRACT Chlorine production remains foundational to chemical manufacturing, yet its electrochemical generation is hindered by sluggish kinetics and unfavorable intermediate adsorption−desorption dynamics. Here, we fabricate atomically Ru‐doped Co 3 O 4 featuring asymmetric Ru–O–Co bridge sites, in which isolated Ru atoms are incorporated into the Co 3 O 4 spinel lattice to regulate the local coordination environment and electronic structure. In situ spectroscopic characterizations combined with first‐principles calculations reveal that Ru substitution disrupts the rigid symmetric Co–O–Co configuration and weakens the excessively strong Co–Cl interaction. The relatively weak Ru 4p–O 2p coupling endows Ru sites with abundant accessible vacant orbitals, favoring the formation of labile Ru–Cl species and enabling rapid and reversible Cl adsorption–desorption cycling while suppressing stable Co–Cl intermediates. Such asymmetric electronic modulation accelerates chlorine evolution kinetics and promotes a Ru‐dominant Volmer−Heyrovský pathway with reduced energy barriers. Benefiting from the optimized active‐site configuration, RuO x ‐Co 3 O 4 with an ultralow Ru loading of only 1.64 wt.% delivers substantially higher CER activity than commercial dimensionally stable anodes (DSA), achieving a mass activity of 3049 A g Ru −1 and a Cl 2 selectivity of 98.9% at 1.5 V. This work highlights asymmetric site engineering as an effective strategy for developing highly efficient and selective CER electrocatalysts.
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