异质结
光催化
材料科学
兴奋剂
半导体
范德瓦尔斯力
量子产额
化学键
化学物理
空位缺陷
光化学
共价键
光电子学
纳米技术
化学
分子
结晶学
物理
催化作用
光学
有机化学
荧光
生物化学
作者
Zhi‐Ping Yan,Xin Wang,Ruiding Fei,Ruixue Zhu,Jianfeng Zhao,Wenchao Wang
标识
DOI:10.1016/j.cej.2024.152153
摘要
Developing a highly effective solar-to-H2 conversion system is a promising strategy for carbon neutrality. Here, we report a chemically bonded Z-scheme photocatalyst by specifically linking the conduction band site of ZnIn2S4 with the valence band site of Mn0.3Cd0.7S1-x. Deviates from the typical van der Waals interactions between two semiconductors, the in-built robust binding force (Mn-S bond) and charge transfer channel facilitates the electron mobility, minimizes detrimental deep charge trapping, and prolongs the active charge lifetime from 983 ps to 4250 ps. The sulfur vacancies in Mn0.3Cd0.7S1-x are partially refilled by atoms of the same element in ZnIn2S4 during the in-situ formation of heterojunctions, which promotes and solidates the establishment of interfacial chemical bonds. The optimal photocatalyst achieves a high quantum efficiency of 32.71 % at 420 nm. This study offers a new insights into the development of Z-Scheme heterojunctions via a synergistic approach involving doping, vacancy filling and strong interfacial chemical bonds.
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