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Carbon Doping and Oxygen Vacancy-Tungsten Trioxide/Cu3SnS4 S-Scheme Heterojunctions for Boosting Visible-Light-Driven
Na Zhang1, Yichao Wang1, Zipeng Xing1
1Department of Environmental Science, School of Chemistry and Materials Science, Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education of the People's Republic of China, Heilongjiang University, Harbin 150080, P. R. China.
Abstract:
Developing ideal photocatalysts for energy regeneration and environmental remediation by combining the advantages of individual semiconductors remains a significant challenge. Herein, tungsten trioxide (WO3)/Cu3SnS4 S-scheme heterojunction composite photocatalysts are developed. Initially, doped oxygen vacancy (OV) was prepared on two-dimensional WO3 nanosheets by direct calcination method. Subsequently, Cu3SnS4 nanoflowers are produced via a one-step hydrothermal process, which are then used to wrap the WO3 nanosheets. The close contact between WO3 and Cu3SnS4, coupled with unsaturated C-OV coordination, enhanced the interfacial electron transport. Under visible light irradiation, the WO3/Cu3SnS4 shows an impressive H2 production rate of 3345.26 μmol h-1 g-1, a significant improvement over the individual performances of WO3 and Cu3SnS4. Moreover, WO3/Cu3SnS4 demonstrated the highest photocatalytic tetracycline degradation efficiency, achieving 99.4% degradation within 90 min of illumination. An efficient S-scheme heterojunction system with a well-aligned band structure was successfully constructed. This design effectively extends their lifetime, allowing the heterojunction to achieve maximum efficiency in the light reaction.

