Unique porous ZnS-CdS-CoSx Reuleaux triangle nanosheets: Highly promoted visible-light photocatalytic H2 evolution via synergistic effect of Z-scheme heterojunction and vacancy defects

光催化 异质结 材料科学 空位缺陷 半导体 分解水 可见光谱 化学工程 载流子 带隙 氧化还原 太阳能燃料 光电子学 纳米技术 光化学 化学 催化作用 结晶学 生物化学 工程类 冶金
作者
Liping Wang,Yanyan Li,Hanchu Chen,Ying Zuo,Hui Wang,Jixiang Xu,Haijiao Xie,Haifeng Lin,Lei Wang
出处
期刊:Fuel [Elsevier BV]
卷期号:342: 127847-127847 被引量:8
标识
DOI:10.1016/j.fuel.2023.127847
摘要

Photocatalytic water-splitting employing Z-scheme semiconductor heterojunction is a promising avenue to realize the efficient conversion and storage of renewable solar energy because of its space-separated reduction and oxidation sites, effective charge separation and transportation, as well as the stronger redox abilities of photogenerated carriers. Nevertheless, the efficiency of Z-scheme photocatalysts is often weakened by the insufficient coupling of components due to the stepwise hybridization processes. In this work, unique ZnS-CdS-CoSx porous Reuleaux triangle nanosheets with intimate Z-scheme hetero-interface and S, Zn vacancies were produced by using Zn2Co3(OH)10·2H2O as the bimetallic precursor for subsequent sulfurization and Cd2+-exchange reaction. Noticeably, such a novel structure shows desirable features which suggest a promising photocatalyst for visible-light photocatalytic H2 evolution, including superior charge-separating capability enabled by the Z-scheme charge transfer and synergetic charge-trapping effect of S, Zn vacancies, excellent light-harvesting capacity, abundant S22− species as H2-evolving active sites, a large surface area, and good stability without obvious decline in activity after multiple cycling and long-term tests. The ZnS-CdS-CoSx heterojunction exhibits an outstanding visible-light-driven H2-evolving activity as high as 53.43 mmol·g−1·h−1, corresponding to a high apparent quantum efficiency of 30.8 % at 420 nm, far better than that of Pt-loaded CdS and a great deal of CdS-based photocatalysts reported in the literatures. The present work may shed new light on the designed synthesis of high-performance semiconductor heterojunction for sustainable solar utilization and environmental remediation.
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