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- W4200519039 abstract "In the study, Indium vanadate and Silver deposited on Graphitic carbon nitride (InVO4@[email protected]3N4) ternary heterojunction was successfully synthesized for advanced photocatalytic degradation of amoxicillin residue in aqueous environment. In the ternary heterojunction, silver metal generated plasmon resonance to effectively enhance electron-hole separation of both g-C3N4 and InVO4 components. Silver also acted as an electron mediator to improve its transfer from the InVO4 conduction band to the g-C3N4 valence band. Thus, the InVO4@[email protected]3N4 heterojunction effectively absorbed incident visible light to produce electrons at the conduction band of the g-C3N4 and holes at the valence band of the InVO4. These produced electrons exhibited high reduction potential to effectively react with O2 to form •O2− radicals, which could directly degrade amoxicilin or continuously oxidize H2O to produce •OH radicals for amoxicillin degradation. The photo-induced holes had high oxidation potential to degrade amoxicillin directly or to react with H2O to produce •OH radicals for effective degradation of the antibiotics. Thus, the synthesized InVO4@[email protected]3N4 ternary heterojunction showed advanced photocatalysis for degradation of amoxicillin. Finally, the recovered experiments indicated that the InVO4@[email protected]3N4 ternary heterojunction exhibited high stability and recycling ability during photocatalysis." @default.
- W4200519039 created "2021-12-31" @default.
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- W4200519039 date "2022-01-01" @default.
- W4200519039 modified "2023-09-24" @default.
- W4200519039 title "Development of Indium vanadate and Silver deposited on graphitic carbon nitride ternary heterojunction for advanced photocatalytic degradation of residual antibiotics in aqueous environment" @default.
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- W4200519039 doi "https://doi.org/10.1016/j.optmat.2021.111885" @default.
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