离域电子
价(化学)
催化作用
法拉第效率
材料科学
对称性破坏
锌
电催化剂
吸附
氧化还原
过渡金属
化学物理
协调数
纳米技术
化学
物理化学
物理
电极
电化学
离子
生物化学
有机化学
量子力学
冶金
作者
Yuntong Sun,Wenjun Fan,Yinghao Li,Nicole L. D. Sui,Zhouhao Zhu,Yingtang Zhou,Jong‐Min Lee
标识
DOI:10.1002/adma.202306687
摘要
Abstract Manipulating the coordination environment of individual active sites in a precise manner remains an important challenge in electrocatalytic reactions. Herein, inspired by theoretical predictions, a facile procedure to synthesize a series of symmetry‐breaking zinc metal–organic framework (Zn‐MOF) catalysts with well‐defined structures is presented. Benefiting from the optimized coordination microenvironment regulated by symmetry‐breaking, Zn‐N 2 S 2 ‐MOF exhibits the best performance of nitrogen (N 2 ) reduction reaction (NRR) with NH 3 yield rate of 25.07 ± 1.57 µg h −1 cm −2 and Faradaic efficiency of 44.57 ± 2.79% compared with reported Zn‐based NRR catalysts. X‐ray absorption near‐edge structure shows that the symmetry‐breaking distorts the coordination environment and modulates the delocalized electrons around the Zn sites, which favors the formation of unpaired low‐valence Zn δ+ , thereby facilitating the adsorption/activation of N 2 . Theoretical calculations elucidate that low‐valence Zn δ+ in Zn‐N 2 S 2 ‐MOF can effectively lower the energy barrier of potential determining step, promoting the kinetics and boosting the NRR activity. This work highlights the relationship between the precise coordination environment of metal sites and the catalytic activity, which offers insightful guidance for rationally designing high‐efficiency electrocatalysts.
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