4.7 Article

Facile fabrication of a novel spindlelike MoS2/BiVO4 Z-scheme heterostructure with superior visible-light-driven photocatalytic disinfection performance

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出版社

ELSEVIER
DOI: 10.1016/j.seppur.2022.121706

关键词

BiVO4; MoS2 Z-scheme heterojunction; Photocatalysis; Disinfection

资金

  1. Basic Scientific Fund for National Public Research Institutes of China [2019Y03, 2020S02]
  2. Young Elite Scientists Sponsorship Program [CASTYESS20210201]
  3. Key Research and Development Program of Shandong Province (Major Scientific and Technological Innovation Project) [2019JZZY020711]
  4. National Natural Science Foundation of China [51702328]
  5. Hainan Province Science and Technology Special Fund [ZDYF2021GXJS210]

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Novel MoS2/BiVO4 porous spindlelike heterostructures (MBV SHs) were synthesized, which displayed excellent photocatalytic antibacterial performance and potential application in environmental purification.
Novel MoS2/BiVO4 porous spindlelike heterostructures (MBV SHs) were successfully constructed via a facile insitu hydrothermal approach, which were consisted of spindles with hierarchical squamous nanosheets (NSs) covering throughout the surface. A possible formation mechanism of MBV SHs was studied and proposed, illustrating an in-situ growth of BiVO4 crystals on MoS2 NSs followed by a self-assembly process through Ostwald ripening and anisotropic growth with the assistance of polyvinylpyrrolidone (PVP). The photocatalytic activities of the obtained samples were systematically studied by the inactivation of Pseudomonas aeruginosa (P. aeruginosa) and Staphylococcus aureus (S. aureus) under visible light irradiation. Results indicated that MBV SHs displayed a greatly improved photocatalytic antibacterial performance compared with pure BiVO4 and MoS2, among which MBV-4 can kill almost all bacteria within 90 min. The enhanced photocatalytic property can be ascribed to the formation of Z-scheme heterojunction and rich oxygen vacancies (OVs) in MBV SHs, leading to the stronger photoabsorption ability, faster separation of photoinduced charge carriers, and more robust redox capacity. Moreover, the photocatalytic mechanism of Z-scheme heterojunction was investigated in detail according to the radicals capture and electron spin resonance (ESR) tests combined with the first-principle theoretical calculation, verifying that center dot O-2(-) and h(+) played significant roles in the photocatalytic process. This study provides a novel Z-scheme heterojunction with prospective application possibility in environmental purification.

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