催化作用
化学
密度泛函理论
轴对称性
电荷密度
氧还原反应
硫黄
阴极
氧气
极化(电化学)
活动站点
反应机理
化学物理
对称性破坏
基本电荷
氧还原
工作(物理)
电子结构
材料科学
产品分销
无机化学
电池(电)
电极
计算化学
功率密度
物理化学
光化学
电子
活性氧
氧化还原
纳米技术
原子物理学
过渡金属
作者
Jixiang Zou,Lixiao Shen,Zhishuai Yuan,Mei Yan,Lei Zhao,Chongshen Guo,Zhen‐Bo Wang
摘要
ABSTRACT Dual‐atom catalysts (DACs) represent an emerging and promising paradigm in electrocatalysis. Nevertheless, their symmetric electron density distribution hampers the polarization and subsequent scission of the O─O bond. In this work, a Co–Zn DAC with axial sulfur coordination (Co─Zn@SNC) was constructed via a molecular‐cage encapsulation method. The as‐synthesized catalyst demonstrated outstanding oxygen reduction reaction (ORR) activity across a wide pH range, with half‐wave potentials of 0.902 V in 0.1 M KOH, 0.817 V in 0.1 M PBS, and 0.809 V in 0.1 M HClO 4 . Theoretical calculations revealed that the axially coordinated S not only modulated the orbital and electronic structure of the Co active center but also collaborated with the nearby Zn site to induce an asymmetric charge distribution within the Co‐N 4 , thereby shifting the catalytic activity closer to the peak of the Sabatier volcano plot. The zinc–air battery (ZAB) and microbial fuel cell (MFC) assembled with the Co─Zn@SNC cathode exhibited peak power densities of 166.36 mW cm −2 and 1.505 W m −2 , respectively, as well as good stability. The present work provided fundamental insights into the precise regulation and underlying mechanism of DACs, offering a viable strategy for the rational design of advanced electrocatalysts for energy storage and conversion applications.
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