反键分子轨道
催化作用
碳纤维
原子轨道
化学
氧气
材料科学
轨道杂交
电化学
化学物理
结晶学
Atom(片上系统)
基质(化学分析)
光化学
配体(生物化学)
工作(物理)
化学工程
过渡金属
化学稳定性
杂原子
金属
纳米技术
费米能级
电催化剂
价(化学)
电极
掺杂剂
密度泛函理论
作者
Zihao Wan,Zizai Ma,Yun Wu,Jianping Du,Jinping Li,Xiaoguang Wang
摘要
ABSTRACT Strategic microenvironment engineering of single‐atom catalysts offers a method for simultaneously enhancing oxygen reduction reaction (ORR) activity and stability. Herein, we synthesize Fe single atoms on an S‐doped hollow carbon matrix with carbon vacancies (Fe SAs/NSC V ) via a topological transformation strategy. The resulting Fe SAs/NSC V exhibits exceptional ORR performance and enables aqueous zinc–air batteries (ZABs) with remarkably highpower density. In situ spectroscopic analyses confirm that S heteroatoms in the second coordination shell of FeN 4 sites, along with adjacent carbon vacancies, collectively accelerate the conversion of oxygenated intermediates and simultaneously stabilize the FeN 4 active site configuration of Fe SAs/NSC V . Theoretical calculations further reveal that introduced S species and adjacent carbon vacancies cooperatively fine‐tune the hybridization of Fe 3 d z 2 and O 2 p orbitals, increasing the occupancy of antibonding orbitals near the Fermi level and thereby promoting *OH desorption. Meanwhile, this heteroatom‐defect synergy strengthens the anchoring of Fe sites within the carbon matrix and enhances the thermodynamic stability of these sites, indicating robust resistance to demetallation under operating conditions. Overall, this work establishes atomic‐level heteroatom‐defect cooperation as an effective strategy for the concurrent optimization of activity and stability in multi‐electron electrocatalysis.
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