化学
光化学
催化作用
活动站点
动力学
电荷(物理)
反应中间体
接口(物质)
电子转移
反应机理
质子耦合电子转移
化学动力学
钥匙(锁)
分子
作者
Liguang Tang,Huan Xu,X. Liu,Jia-Xing Guo,Yangrui Xu,Yu Cheng,Guosheng Zhou,Sheng Feng,Haixia Liu,Zou Lu
标识
DOI:10.1021/acscatal.5c07715
摘要
The carbon dioxide reduction reaction involves a series of consecutive intermediate reaction processes. How to precisely control the charge dynamics between the catalyst and the intermediate products and achieve the rapid migration of electrons remains a challenge. In this work, Bi defects were introduced through a simple hydrothermal method. The defect structure disrupts the periodicity of the crystal lattice, causing the length of the Bi−S bonds at the interface to shorten. The optimized Bi−S bond length enabled Biv-Bi2S3/ZnS to have faster electron transfer kinetics, significantly enhancing the electron coupling ability between the catalyst and the reduction intermediate, with the conversion kinetics of the key intermediate *CHO increasing by 10.8 times. The combination of experimental data and density functional theory calculations indicates that this interfacial short-range transfer path can enable the rapid participation of electrons in the reaction process, thereby improving the photocatalytic reduction performance.
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