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Constructing 1D/0D Sb2S3/Cd0.6Zn0.4S S-scheme heterojunction by vapor transport deposition and in-situ hydrothermal strategy towards photoelectrochemical water splitting
Liu, Dekang1; Jin, Wei1; Zhang, Liyuan1; Li, Qiujie1; Sun, Qian1; Wang, Yishan2; Hu, Xiaoyun1; Miao, Hui1
作者部门瞬态光学研究室
2024-02-25
发表期刊Journal of Alloys and Compounds
ISSN09258388
卷号975
产权排序2
摘要

Antimony sulfide (Sb2S3) is widely used in photocatalysts and photovoltaic cells because of its abundant reserves, low toxicity, environmental friendliness, narrow band gap, and high light absorption capacity. Sb2S3 shows a quasi-one-dimensional structure composed of [Sb4S6]n nanoribbons, a lot of reported studies are focused on preparing Sb2S3 with [hk1] oriented dominant growth to improve the photogenerated carrier transport capacity of Sb2S3. However, there is relatively few research on the preparation of [hk1] oriented rod-like Sb2S3 by vapor transport deposition (VTD) method. In this work, the VTD method was used to prepare Sb2S3 with [hk1] oriented growth on the FTO substrate, and then composite with the ternary solid solution CdxZn1−xS. Finally, a novel Sb2S3/Cd0.6Zn0.4S S-scheme heterojunction with rod-like core-shell structure was successfully constructed, which could effectively improve the photoelectrochemical properties. Because the solid solution component x is adjustable, that is, CdxZn1−xS has continuously adjustable band gap width and energy level position, the Sb2S3/CdxZn1−xS heterojunction type can be regulated from Type-II to S-scheme. Photoelectrochemical (PEC) tests indicated that the composite photoanode Sb2S3/Cd0.6Zn0.4S achieved a higher photocurrent density (2.54 mA·cm−2, 1.23 V vs. RHE), which is about 4.31 times that of pure Sb2S3 nanorod photoanode (0.59 mA·cm−2, 1.23 V vs. RHE). © 2023 Elsevier B.V.

关键词Sb2S3 Vapor transport deposition S-scheme heterojunction Photoelectrochemical water splitting
DOI10.1016/j.jallcom.2023.172926
收录类别SCI ; EI
语种英语
WOS记录号WOS:001127814800001
出版者Elsevier Ltd
EI入藏号20234915144994
引用统计
文献类型期刊论文
条目标识符http://ir.opt.ac.cn/handle/181661/97053
专题瞬态光学研究室
通讯作者Wang, Yishan
作者单位1.School of Physics, Northwest University, Xi'an; 710127, China;
2.State Key Laboratory of Transient Optics and Photonics, Chinese Academy of Sciences, Xi'an; 710119, China
推荐引用方式
GB/T 7714
Liu, Dekang,Jin, Wei,Zhang, Liyuan,et al. Constructing 1D/0D Sb2S3/Cd0.6Zn0.4S S-scheme heterojunction by vapor transport deposition and in-situ hydrothermal strategy towards photoelectrochemical water splitting[J]. Journal of Alloys and Compounds,2024,975.
APA Liu, Dekang.,Jin, Wei.,Zhang, Liyuan.,Li, Qiujie.,Sun, Qian.,...&Miao, Hui.(2024).Constructing 1D/0D Sb2S3/Cd0.6Zn0.4S S-scheme heterojunction by vapor transport deposition and in-situ hydrothermal strategy towards photoelectrochemical water splitting.Journal of Alloys and Compounds,975.
MLA Liu, Dekang,et al."Constructing 1D/0D Sb2S3/Cd0.6Zn0.4S S-scheme heterojunction by vapor transport deposition and in-situ hydrothermal strategy towards photoelectrochemical water splitting".Journal of Alloys and Compounds 975(2024).
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