材料科学
催化作用
过渡金属
电化学
镁
二氧化碳电化学还原
电极
密度泛函理论
电催化剂
氢
可逆氢电极
金属
无机化学
解吸
化学工程
原子单位
电子结构
原子轨道
氧化还原
纳米技术
化学物理
反应机理
纳米尺度
标准氢电极
碳纤维
限制
电化学能量转换
作者
Huanyan Liu,Mingxin Gao,Weidong Cheng,Zhongnan Ling,Shuming Zhou,Shiju Yu,Jian-Kang Liu,Zhong-Jun Chen,Guang Mo,Wu Xuehui,Zhonghua Wu,Yaguang Peng,Xinchen Kang,Buxing Han,Xueqing Xing
标识
DOI:10.1002/adfm.202521705
摘要
Abstract The electrochemical carbon dioxide reduction reaction (CO 2 RR) represents a promising strategy for converting CO 2 into CO. Atomically dispersed transition metal sites have an exceptional ability to activate CO 2 . However, the strong hybridization between the 3 d orbitals of these transition metals and the 5σ or 2π * orbital of CO significantly impedes * CO desorption, thereby limiting the overall CO generation activity. In contrast, s ‐block metals, with diffuse 3 s electron clouds, exhibit weaker interactions with * CO. Nevertheless, their practical application is hindered by the high energy barrier associated with the formation of the * COOH intermediate. To address these challenges, a fluorine(F)‐tuned magnesium single‐atom catalyst (Mg‐SAC) is developed. Remarkably, this catalyst achieved a CO Faraday efficiency of 97.3% and a current density of 260.4 mA cm −2 at −0.4 V vs the reversible hydrogen electrode in a flow cell, surpassing the performance of most state‐of‐the‐art SACs and transition metal catalysts reported in the literature. Mechanistic studies reveal that * CO desorption on Mg sites is significantly easier compared to that on Fe and Co sites. Furthermore, the incorporation of F atoms modifies the electronic structure of the MgN 4 sites, substantially lowering the energy barrier for the formation of the critical * COOH intermediate.
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