一氧化碳
钙钛矿(结构)
电化学
化学
无机化学
催化作用
选择性
碳纤维
金属
合理设计
反应机理
晶体结构
活动站点
多相催化
氧化还原
控制重构
一氧化碳
过渡金属
化学工程
材料科学
电子结构
结构稳定性
铜
密度泛函理论
尖晶石
协调数
作者
Yuhan Zhou,Yin Wang,Guoshuai Shi,Yao Lv,Tingyu Lu,Shulin Gu,Qinshang Xu,Yuluo Shen,Yefei Li,Sheng Dai,Wen‐Ning Wang,Liming Zhang
标识
DOI:10.1002/ange.202513246
摘要
Abstract Understanding the correlation between surface catalytic motifs and electrochemical reaction pathways is crucial for the rational design of high‐performance electrocatalysts, yet remains hindered by the dynamic reconfiguration of active sites under operating conditions. In this study, we establish a tunable platform based on a series of Cu‐based perovskite oxides with systematically varied A‐site cations to investigate how A‐site chemistry regulates the structural dynamics of Cu and its interplay with the carbon monoxide reduction (COR) pathway. Operando spectroscopic analyses reveal that those perovskites with alkaline‐earth A‐site cations promote Cu clustering into metallic states, favoring multicarbon product formation. In contrast, rare‐earth A‐site perovskites stabilize surface Cu + species through strong Cu–O interactions, thereby enhancing the selectivity of methane. Complementary theoretical calculations further demonstrate that the Cu─O bond strength—modulated by A‐site composition—dictates the electrochemical stability of Cu active sites. These findings underscore the pivotal role of local coordination environments in steering catalyst reconstruction and product distribution, and provide guiding principles for A‐site engineering in perovskite‐based COR catalysts.
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