化学
配体(生物化学)
硝酸盐
还原(数学)
组合化学
生物化学
有机化学
受体
几何学
数学
作者
Shuang‐Quan Zang,Hong Chen,Kongsheng Qi,Xiaoyu Dong,Y. P. Pei,Yujie Jin,Han Zhang,Si Li,Jie Wu,Jinmeng Cai
标识
DOI:10.1002/ange.202510429
摘要
Surface ligands play a crucial role in modifying catalytic environments and enhancing performance through various mechanisms. However, the multivariate synergistic mechanisms, dynamic evolution patterns, and universal design principles of ligand effects remain to be thoroughly investigated. Metal clusters, with their atomically precise structures, serve as ideal models for studying ligand regulation mechanisms. Herein, we synthesized two copper clusters of N,S‐bidentate ligand‐protected Cu4(PTI)4 and Cu4(BTT)4 featuring identical metallic core structures but distinct ligand architectures, and evaluated their catalytic performance for nitrate reduction reaction (NO3RR). Notably, the Cu4(PTI)4 cluster with stronger electron‐withdrawing ligands achieved near‐100% Faradaic efficiency at optimal potentials, significantly surpassing the Cu4(BTT)4. Through in situ characterization and theoretical calculations, we unveiled that enhancing the electron‐withdrawing capability of ligands induces alterations in the local microenvironment and electronic structure of metal active sites, thereby exerting positive impacts on electrocatalytic NO3RR performance.
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