过电位
析氧
催化作用
电解质
氧气
空位缺陷
化学
氧化还原
吸附
电子结构
Atom(片上系统)
材料科学
无机化学
电化学
结晶学
物理化学
计算化学
电极
有机化学
计算机科学
嵌入式系统
生物化学
作者
Qing Qin,Tiantian Wang,Zijian Li,Guolin Zhang,Haeseong Jang,Liqiang Hou,Yu Wang,Min Gyu Kim,Shangguo Liu,Xien Liu
标识
DOI:10.1016/j.jechem.2023.09.010
摘要
The poor stability of RuO2 electrocatalysts has been the primary obstacles for their practical application in polymer electrolyte membrane electrolyzers. To dramatically enhance the durability of RuO2 to construct activity-stability trade-off model is full of significance but challenging. Herein, a single atom Zn stabilized RuO2 with enriched oxygen vacancies (SA Zn-RuO2) is developed as a promising alternative to iridium oxide for acidic oxygen evolution reaction (OER). Compared with commercial RuO2, the enhanced Ru–O bond strength of SA Zn-RuO2 by forming Zn-O-Ru local structure motif is favorable to stabilize surface Ru, while the electrons transferred from Zn single atoms to adjacent Ru atoms protects the Ru active sites from overoxidation. Simultaneously, the optimized surrounding electronic structure of Ru sites in SA Zn-RuO2 decreases the adsorption energies of OER intermediates to reduce the reaction barrier. As a result, the representative SA Zn-RuO2 exhibits a low overpotential of 210 mV to achieve 10 mA cm−2 and a greatly enhanced durability than commercial RuO2. This work provides a promising dual-engineering strategy by coupling single atom doping and vacancy for the tradeoff of high activity and catalytic stability toward acidic OER.
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