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| Preparation of Sb2S3/Sn3O4 S-scheme Heterostructures and Its Performance for Methyl Orange Photocatalytic Degradation |
YIN Xiaotong1, TIAN Yuxin1, FENG Sheng1, LI Wenying1, WANG Lixing1, ZHANG Lina1,2( ), ZHANG Wei1,2 |
1.College of Physical Science and Technology, Bohai University, Jinzhou 121013, China 2.Institute of Ocean Research, Bohai University, Jinzhou 121013, China |
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Cite this article:
YIN Xiaotong, TIAN Yuxin, FENG Sheng, LI Wenying, WANG Lixing, ZHANG Lina, ZHANG Wei. Preparation of Sb2S3/Sn3O4 S-scheme Heterostructures and Its Performance for Methyl Orange Photocatalytic Degradation. Chinese Journal of Materials Research, 2026, 40(5): 352-360.
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Abstract A photocatalyst of Sb2S3/Sn3O4 S-scheme heterojunction was prepared via hydrothermal method by in-situ growing Sn3O4 nanosheets on the surface of Sb2S3 nanorods. The phase constituents, morphology, elemental distribution, light absorption properties, and charge separation efficiency of the acquired photocatalyst were characterized by using X-ray diffraction, scanning electron microscopy, X-ray photoelectron spectroscopy, UV-Visible absorption spectroscopy, photocurrent, electrochemical impedance spectroscopy and photoluminescence spectroscopy. The performance of Sb2S3/Sn3O4 heterojunction catalysts with different deposited amount of Sb2S3 for degradation of methyl orange (MO, initial concentration: 20 mg/L) was investigated under visible light irradiation. The results indicate that these photocatalysts with heterogeneous structure all exhibit significantly high photocatalytic activity, the optimized photocatalyst with 0.1 g of Sb2S3 achieves a degradation rate of 91% for MO within 40 min. The results of XPS analysis, band gap structure and free radical trapping analysis revealed that the photogenerated charge carriers in this heterostructure follow a S-scheme transfer mechanism.
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Received: 17 November 2025
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| Fund: Institute of Ocean Research of Bohai University(BDHYYJY2022014);Institute of Ocean Research of Bohai University(2022009) |
Corresponding Authors:
ZHANG Lina, Tel: 18704208573, E-mail: zhanglina@bhu.edu.cn
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