催化作用
化学
吸附
氧气
解吸
溢出效应
氧还原
无机化学
氧还原反应
动能
氧化还原
化学工程
过渡金属
析氧
过氧化物
反应机理
反应中间体
活动站点
活化能
还原(数学)
电催化剂
工作(物理)
材料科学
氢溢流
多相催化
纳米技术
屏障激活
作者
Xiaoxiao Dong,Tao Yu,Wenchao Hu,Fan Yang,Han Wang,Mingxu Liu,Dong Yan,Chenghui Xia,Yongcheng Jin,Jianhua Zhang,Chun‐Chao Hou
标识
DOI:10.1002/anie.202521225
摘要
ABSTRACT Metal‐nitrogen‐carbon (M‐N‐C) materials have emerged as promising non‐precious electrocatalysts for the oxygen reduction reaction (ORR). However, the origin of kinetic activity and the precise regulation of atomically active sites are not fully understood. Herein, we synthesized a Fe–Co dual‐site catalyst with an out‐of‐plane coordination structure. Experimental and theoretical results show that, such out‐of‐plane configuration could adjust the local coordination environment of c‐FeCoDAC, enhancing the d‐p orbital hybridization between metals and the oxygen‐containing intermediates, which improves the adsorption of the OOH* intermediate, and shifts the rate‐limiting step from OO* + H 2 O + e − →OOH* + OH − step to OH* desorption step, triggering the following OH* spillover process. The adsorbed OH* spontaneously migrates from Fe sites to adjacent Co sites on the curved surface structure due to thermodynamic favorability, where it undergoes further reduction and desorption, significantly reducing the energy barrier of the rate‐determining step. Accordingly, the half‐wave potential (E 1/2 ) of c‐FeCoDAC was found to be 0.85 V, outperforming the benchmark Pt/C, while exhibiting superior durability and low peroxide yield, enabling its application in Zn‐air batteries. This study provides new mechanistic insights for the rational design of curved M‐N‐C catalysts for efficient oxygen electroreduction.
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