光催化
三元运算
异质结
硫化物
氧化物
材料科学
氢
半导体
石墨烯
光催化分解水
分解水
化学工程
纳米技术
化学
催化作用
光电子学
计算机科学
冶金
工程类
有机化学
生物化学
程序设计语言
作者
Yuhao Liu,Xinlong Zheng,Yingjie Yang,Jing Li,Weifeng Liu,Yijun Shen,Xinlong Tian
出处
期刊:Chemcatchem
[Wiley]
日期:2021-11-18
卷期号:14 (5)
被引量:29
标识
DOI:10.1002/cctc.202101439
摘要
Abstract The development of efficient and stable photocatalysts is key to achieving highly efficient photocatalytic hydrogen evolution. Compared with photocatalysts containing only one type of semiconductor, heterojunction structure photocatalyst combining two or more semiconductors show altered band alignment at the interface, which promotes the separation of photogenerated carriers and inhibits carrier recombination. Thus, this kind of photocatalysts usually exhibit higher hydrogen evolution rates. To date, binary‐metal‐sulfide/titanium oxide (BMS/TiO 2 ) heterojunction photocatalysts, such as CdS/TiO 2 , MoS 2 /TiO 2 , and ZnS/TiO 2 , have shown great promise for photocatalytic hydrogen evolution. Compared with BMS/TiO 2 , recently developed ternary‐metal‐sulfide/TiO 2 (TMS/TiO 2 ) photocatalysts have the advantages of low toxicity, a tunable band structure, and favorable chemical stability, enabling a higher photocatalytic hydrogen evolution rate. In this review, TMS/TiO 2 heterojunction photocatalysts are thoroughly summarized and the semiconductor properties of TMSs are firstly introduced. Afterwards, photocatalytic hydrogen evolution applications based on TMS/TiO 2 heterojunction photocatalysts are reviewed and discussed in detail, mainly focusing on the heterojunction type, band structure, and photogenerated carrier separation and transport. Finally, our conclusions and the perspective based on the potential for the further improvement of TMS/TiO 2 based photocatalysts are presented.
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