Fabrication of Hexagonal Prism-Shaped Double S-Scheme Cu2O@CdS/ZnS Heterojunctions Utilizing Zeolite Templates: Enhanced Photocatalytic Hydrogen Production and Mechanism Insight

制作 光催化 六角棱镜 模板 异质结 沸石 制氢 材料科学 六方晶系 纳米技术 棱镜 化学工程 光电子学 化学 光学 结晶学 催化作用 有机化学 工程类 物理 医学 替代医学 病理
作者
Jing Li,Dingze Lu,Kiran Kumar Kondamareddy,Wenju Gu,Yucheng Liu,Yaoheng Su,Zhenjiang You,Huiqing Fan,Wingkei Ho
出处
期刊:Crystal Growth & Design [American Chemical Society]
卷期号:24 (21): 8769-8781 被引量:2
标识
DOI:10.1021/acs.cgd.4c00651
摘要

The production of photocatalytic hydrogen through water splitting is a promising green route due to its nontoxicity and harmlessness, but a key challenge lies in improving the separation efficiency of photogenerated charge carriers. To address this issue, we have successfully synthesized a hexagonal prism-shaped double S-scheme Cu2O@CdS/ZnS heterojunction, utilizing a microporous zeolite as a sacrificial template. This unique structure exhibits a remarkable enhancement in charge carrier separation and transfer capabilities, enabling highly efficient photocatalysis. Specifically, the best photocurrent responses were observed in the 420–450 nm wavelength range. Notably, the hexagonal prism-shaped double S-scheme Cu2O@CdS/ZnS heterojunction exhibits an excellent photocatalytic hydrogen production performance (8.30 mmol·h–1·g–1), which is nearly 10 times higher than that of pure CdS and 1.2 times higher than that of CdS/ZnS. To further elucidate the mechanism behind this enhanced hydrogen production, we propose a hydrogen production pathway for Cu2O@CdS/ZnS, supported by density functional theory (DFT) calculations. The improved performance of hydrogen production can be attributed to the synergistic effect of the double S-scheme heterojunctions and the hexagonal prism-shaped structure, which collectively accelerate the photogenerated charge transport efficiency and enhance the hydrogen production efficiency.
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