光催化
纳米技术
材料科学
表征(材料科学)
杂原子
载流子
制氢
分解水
铟
生化工程
吸收(声学)
氢
带隙
软件部署
可扩展性
产量(工程)
析氧
光催化分解水
量子产额
作者
Fangying Hong,Jing Tong,Sen Wang,Zuoli He
出处
期刊:Coatings
[Multidisciplinary Digital Publishing Institute]
日期:2025-09-10
卷期号:15 (9): 1061-1061
被引量:6
标识
DOI:10.3390/coatings15091061
摘要
ZnIn2S4, a visible-light-responsive layered sulfide photocatalyst with a suitable bandgap (~2.4 eV), exhibits considerable potential for the photocatalytic hydrogen evolution reaction (PHER) due to its low toxicity, excellent stability, and appropriate band alignment. Nevertheless, its practical deployment is limited by inherent issues such as rapid charge carrier recombination, scarce surface-active sites, and slow oxidation kinetics. Defect engineering strategies—including sulfur, zinc, and indium vacancies, as well as heteroatom doping—have been developed to mitigate these shortcomings. This review not only summarizes recent advances in these strategies but also elucidates the fundamental physicochemical mechanisms behind the enhanced photocatalytic performance. A systematic quantitative evaluation is presented, highlighting improvements in critical performance metrics such as hydrogen evolution rate, light absorption range, apparent quantum yield (AQY), and charge separation efficiency. Furthermore, the review offers a critical perspective on the current state of defect-engineered ZnIn2S4 systems. Promising future research pathways are outlined, with emphasis on atomic-precision synthesis and operando characterization techniques. Finally, we discuss persistent challenges in the field, including reproducibility in synthesis, long-term operational stability, and scalability toward industrial hydrogen production.
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