光催化
空位缺陷
材料科学
硫黄
还原(数学)
纳米技术
光电子学
激光器
吸附
激光烧蚀
化学工程
催化作用
工作(物理)
降级(电信)
光催化分解水
纳米颗粒
光化学
脉冲激光沉积
化学物理
科技与社会
化学稳定性
作者
Saira Man,Jian Lei,Shuaikang Sang,Enquan Zhu,You Li,KhadijaTul Kubra,Zakaria Ismail,Zhongliao Wang,Chao Zhang,Jingxiang Low,Yujie Xiong
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2026-02-07
卷期号:19 (6): 94908531-94908531
标识
DOI:10.26599/nr.2026.94908531
摘要
Vacancy defect engineering represents one of the most effective strategies for enhancing photocatalytic performance. However, the wide applications of vacancy defect engineering are confronted with the problems of precise control vacancy defect engineering and poor stability. Herein, we employ an advanced pulse laser ablation in liquid (PLAL) method to introduce sulfur vacancies on the ZnIn2S4 nanosheets. Specifically, the vacancy concentration on the ZnIn2S4 can be easily modulated by changing the time for PLAL. In addition, it is discovered that the introduction of sulfur vacancies on the ZnIn2S4 nanosheets can provide enormous surface-active sites and facilitate the photogenerated charge carrier, thereby enhancing photocatalytic CO2 conversion. Compared to the pristine ZnIn2S4, the sulfur vacancies-rich ZnIn2S4 nanosheets show 15-fold enhancement in photocatalytic CO2 conversion performance towards CO production, reaching 365 µmol g−1 h−1. In addition, the sulfur vacancies-rich ZnIn2S4 shows a high stability for photocatalytic CO2 conversion, retaining its performance after 12 h of reaction. According to the mechanistic studies, it is revealed that the sulfur vacancies can also enhance the adsorption capability of ZnIn2S4, thereby reducing the potential barrier for subsequent conversion. This work demonstrates the potential of the PLAL strategy for not only precisely introducing vacancy defects on the semiconductors, but also enhancing the stability of the defects, which can pave new avenues for the photocatalytic applications.
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