电合成
化学
无机化学
电化学
铟
电解
催化作用
吸附
氢
氨
可逆氢电极
离子键合
光化学
法拉第效率
电极
电子转移
产量(工程)
高氯酸盐
电化学电池
分解水
激进的
电极电位
氧化还原
离子
氨生产
电解质
阳极
电催化剂
电解水
次磷酸
作者
Quan Quan,Yuxuan Zhang,Boxiang Gao,Haifan Li,Dong Chen,Pengshan Xie,Weijun Wang,Dengji Li,Yi Shen,Yan Yan,Shaohai Li,Chun‐Yuen Wong,SenPo Yip,Johnny C. Ho
标识
DOI:10.1002/ange.202520730
摘要
Abstract Microenvironment modulation, involving the selective adsorption of ions and the engineering of hydrogen radicals, is critical for the neutral electrochemical reduction of nitrate to ammonia at high current densities. In this work, self‐adaptive low‐valent indium single atoms SAs decorated copper‐based nanosheets were investigated as a prototype. The catalyst exhibits a maximum ammonia Faradaic efficiency (FE NH3 ) of 99.36% and a high NH 3 yield rate of 29.02 mg h −1 mg cat. −1 in neutral electrolyte. In‐depth experiments and theoretical calculations suggest that the indium SAs optimize the local electronic distribution of the derived Cu matrix through strong p‐d orbital couplings, with the electron‐relay effect, thereby enhancing electron transfer and regulating the supply of hydrogen radicals to accelerate the hydrogenation process. Furthermore, in situ Raman results and molecular dynamics simulations reveal that the indium SAs can act as solid‐state buffering sites by inducing a potential‐dependent adsorption behavior of NO 3 − over SO 4 2− as a supporting oxoanion in the electric double layer, consequently maintaining high reaction activity and selectivity. Herein, the as‐designed electrode operates stably at 200 mA cm −2 for 150 h in a bipolar membrane electrode assembly electrolyzer with a FE NH3 of ∼83%, indicating promising practical applications.
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