Fabrication of 3D CuS@ZnIn2S4 hierarchical nanocages with 2D/2D nanosheet subunits p-n heterojunctions for improved photocatalytic hydrogen evolution

纳米笼 光催化 纳米片 材料科学 异质结 载流子 光催化分解水 纳米技术 半导体 分解水 化学工程 制氢 光化学 催化作用 光电子学 化学 有机化学 工程类 生物化学
作者
Hui‐Tao Fan,Zhou Wu,Kecheng Liu,Weisheng Liu
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:433: 134474-134474 被引量:152
标识
DOI:10.1016/j.cej.2021.134474
摘要

Photocatalysis based on metal sulfide semiconductor is considered as an economic, safe, renewable, and clean technology. However, the availability of photocatalysts is limited by the low solar energy utilization efficiency and the fast recombination of photogenerated electron-hole pairs. Developing a hollow heterostructure photocatalyst based on semiconductors for enhancing solar energy utilization and separation efficiency of photogenerated carriers is crucial in the photocatalytic H2 production reaction. The as-prepared 3D hierarchical nanocages photocatalyst [email protected]2S4 with abundant and compact nanosheets 2D/2D hetero-interfaces displayed an improved photocatalytic hydrogen evolution rate as high as 7910 μmol h−1 g−1 in the absence of any cocatalyst. This is the first report of the use of CuS nanosheets-assembled hollow cubic cages to construct 3D hierarchical nanocages photocatalysts. The close distance between the two nanosheet subunits induce the strong interaction, which was advantage to the separation and transfer of charge carriers. In addition, the hollow structure can not only enhance light adsorption, but also suppress photogenerated carrier recombination. The experimental characterizations and theory calculations confirmed that the strong interaction between CuS and ZnIn2S4 2D/2D hetero-interfaces can extremely facilitate the separation of photogenerated charge carriers and accelerate the electrons transfer. The present work provides a feasible method to construct heterojunction photocatalyst for hydrogen evolution via water splitting powered.
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