析氧
密度泛函理论
色散(光学)
吸附
氧化物
电化学
兴奋剂
材料科学
化学工程
无机化学
化学
路径(计算)
星团(航天器)
催化作用
化学物理
机制(生物学)
氧气
设计要素和原则
电流密度
纳米技术
分解水
锌
反应机理
过渡金属
结构稳定性
拓扑(电路)
复合氧化物
理论(学习稳定性)
金属
标识
DOI:10.1021/acs.jpclett.5c03207
摘要
While Zn-doping significantly enhances the electrochemical performance of RuO 2 for the acidic oxygen evolution reaction (OER), the underlying mechanisms and the optimal design principles remain unclear. Here, we employ a cluster expansion (CE) model based on density functional theory (DFT) calculations to systematically explore energetically favorable configurations of Ru 1– x Zn x O 2 with Zn concentrations ranging from 4.2% to 25%. Our results reveal that varying Zn doping levels can both induce uniform Zn dispersion to create abundant atomically dispersed Ru–Zn dual-metal sites on the RuO 2 (110) surface and enable precise tuning of Ru–Zn intersite distance to promote oxide path mechanism (OPM) in the OER. Moreover, the operating potential dynamically modulates the electronic structure of these dual-sites, adjusting adsorption energies of the OER intermediates and enabling precise control over reaction pathways. Additionally, the structural stability of Ru 1– x Zn x O 2 during the OER is positively correlated with the Zn-doping concentration and no longer significantly increased when the Zn concentration is >12.5%. Our findings establish two key design strategies for optimizing OPM: (1) maintaining low operating potentials and (2) controlling Zn doping at ∼12.5%. Under such conditions, OPM overcomes the theoretical limitations of conventional adsorbate evolution mechanism (AEM), achieving significantly reduced overpotentials and enhanced durability in acidic OER.
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