掺杂剂
密度泛函理论
催化作用
材料科学
电化学
化学物理
联轴节(管道)
选择性
混合功能
计算化学
从头算量子化学方法
电解质
合金
Pourbaix图
电子转移
氢
从头算
分子动力学
交换电流密度
还原(数学)
多相催化
电子结构
剥离(纤维)
纳米技术
化学
不对称
化学工程
人口
氧化还原
分子
物理化学
作者
Tianwei He,Rongxing Sun,Ran Shi,Xinqi Chen,Tong Zhou,Yun Han,Feng Liu,Cui Hao,Haobo Li,Qingju Liu
标识
DOI:10.1002/anie.202520426
摘要
Abstract The electrochemical reduction of CO 2 into multicarbon (C 2⁺ ) products is a promising strategy for producing sustainable fuels and chemicals, but conventional Cu catalysts suffer from poor selectivity and limited efficiency. Single‐atom alloys (SAAs), in which isolated dopants are incorporated into a Cu host, offer an atomic‐scale platform to modulate surface chemistry. Here we report a systematic theoretical investigation of 29 Cu‐based SAAs, combining grand‐canonical density functional theory, surface Pourbaix diagrams, and constant‐potential ab initio molecular dynamics with explicit solvation. We uncover a general non‐monotonic periodic trend in adsorbate binding strength—strong → weak → strong—arising from dopant‐induced perturbations of the Cu electronic structure. This universal trend provides a guiding principle: asymmetric active sites, formed by the coexistence of strong‐ and weak‐binding motifs, enable more favorable *CO–*CO coupling and thereby enhance selectivity toward C 2⁺ products. Importantly, we identify net electron transfer from dopant to host as an effective and easily computable descriptor for rapidly screening SAA candidates with low C─C coupling barriers. Guided by this framework, we highlight ScCu, VCu, ZrCu, NbCu, and TaCu as promising SAAs, exhibiting suppressed hydrogen evolution, electrochemical robustness, and efficient C─C bond formation. In particular, NbCu(111) displays a low C─C coupling barrier of 0.87 eV and a thermodynamically viable pathway to ethanol, confirmed under realistic electrolyte conditions. These findings establish atomic‐scale asymmetry as a general design paradigm for advancing SAAs catalysts in CO 2 electroreduction.
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