化学
选择性
电化学
表面工程
阳极
催化作用
极化(电化学)
电解质
铜
电极
氧化物
曲面重建
金属
氧化还原
纳米技术
无机化学
阴极保护
阳极氧化铝
离子
反应机理
氧化铜
化学工程
过渡金属
接口(物质)
铂金
阴极
电化学电池
作者
Hanjoo Kim,Hongmin An,JinYeop Kim,H. D. Park,Chanwook Cha,Robert Haaring,Hyunjoo Lee,Koohee Han,Dong Young Chung
摘要
Efforts to improve C 2+ selectivity in CO 2 electroreduction have increasingly focused on strategies that deliberately induce catalyst surface reconstruction to create and maintain active sites. Among these, approaches using anodic pulses have gained particular attention for their ability to modulate the copper catalyst surface in situ. However, the underlying Cu surface reconstruction mechanisms triggered by anodic polarization still remain unclear. Here, we show that applying anodic potentials to copper can lead to two distinct surface reconstructions: surface oxide formation or metal dissolution, each defining a different reconstruction pathway with contrasting impacts on product selectivity. Oxide-derived reconstruction transiently enhances C 2 over C 1 selectivity but gradually loses effectiveness during operation, while dissolution–redeposition reconstruction continuously forms C 2 -selective sites, resulting in a progressive increase in C 2 selectivity over time. Leveraging this mechanistic understanding, we implement electrolyte engineering by introducing trace Cu 2+ ions under cathodic conditions to directly activate the dissolution–redeposition pathway without anodic bias. This strategy drives a dynamic electrochemical interface that sustains active-site regeneration and enables controllable selectivity, offering an energy-efficient alternative.
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