双功能
材料科学
离域电子
杂原子
原子轨道
钴
催化作用
密度泛函理论
电子结构
化学物理
金属
纳米技术
计算化学
物理
量子力学
有机化学
化学
电子
戒指(化学)
冶金
作者
Yun‐Long Zhang,Bo Liu,Yunkun Dai,Yunfei Xia,Pan Guo,Yang‐Yang Liu,Fantao Kong,Qianyu Zhang,Lei Zhao,Zhen‐Bo Wang
标识
DOI:10.1002/adfm.202209499
摘要
Abstract Cobalt–nitrogen–carbon is hitherto considered as one of the most satisfactory alternatives to precious metal catalysts for oxygen electrocatalysts. However, precisely tuning the local coordination of Co sites and thus engineering d‐orbital electron configuration to optimize the binding energy of the intermediates remains a huge challenge. Herein, a robust electrostatic self‐assembly strategy is developed to engineer penta‐coordinated Co sites by introducing axial O ligands with atomic‐level precision to form CoN 4 O 1 configurations on MXene nanosheets (CoN 4 ‐O/MX). The optimized CoN 4 ‐O/MX demonstrates outstanding bifunctional electrocatalytic performance with a small potential gap of 0.72 V, significantly outperforming the cobalt–nitrogen–carbon catalyst with plane‐symmetric CoN 4 sites and precious metal counterparts. The Zn–air batteries integrated with CoN 4 ‐O/MX provide an outstanding peak power density of 182.8 mW cm −2 and a long‐term cyclability for 250 h. Density functional theory calculations reveal that CoO coordination induces electronic delocalization to draw off partial electrons from the dz 2 orbital, which forms unsaturated orbital filling and lifts the energy level, resulting in a stronger Lewis basicity to facilitate electron injection into the intermediate. The study presented here provides not only a novel methodology to achieve precise control of heteroatom coordination, but also a fundamental understanding about the structure–activity relationships of d z2 orbitals.
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