4.7 Article

Bifunctional S-scheme hybrid heterojunction comprising CdS nanorods and BiOIO 3 nanosheets for efficient solar-induced antibiotic degradation and highly-selective CO 2 reduction

Journal

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
Volume 161, Issue -, Pages 74-87

Publisher

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2023.03.024

Keywords

CdS; BiOIO 3; Bifunctional photocatalyst; S-scheme mechanism; Antibiotic degradation; CO 2 reduction

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The development of a bifunctional photocatalyst that can be utilized for both energy conversion and environmental remediation is of practical significance. A bifunctional S-scheme hybrid photocatalyst comprising CdS nanorods and BiOIO3 nanosheets was developed for efficient antibiotic degradation and CO2 reduction. The exceptional performance of the hybrid catalyst can be attributed to the effective S-scheme charge transfer process, which accelerates photoexcited charge transfer and ensures high charge separation and strong redox power. This study provides insight into the rational design of bifunctional S-scheme hybrid photocatalysts for CO2 reduction and pollutant degradation.
The development of a bifunctional photocatalyst that can be utilized for both energy conversion and environmental remediation is of great practical significance. In addition, an S-scheme charge transfer process can assist a photocatalyst in efficiently separating photoexcited electrons and holes while maintaining the strong reducibility and oxidizability of the former and the latter, respectively. We developed a bifunctional S-scheme hybrid photocatalyst comprising CdS nanorods and BiOIO 3 (BIO) nanosheets for efficient antibiotic degradation and cocatalyst- and sacrificial reagent-free CO 2 reduction. The combination of visiblelight-responsive one-dimensional (1D) CdS and UV-light-responsive 2D BIO resulted in a CdS/BIO hybrid photocatalyst with effective 1D/2D (line) interfacial contact and a broadened optical absorption range. Notably, the CdS/BIO hybrid exhibited exceptional diclofenac degradation and mineralization as well as outstanding CO 2 reduction activity for CO production, with 95.4% CO selectivity over H 2 production. The exceptional performance of the hybrid catalyst is primarily attributed to the accelerated photoexcited charge transfer caused by the 1D/2D line interfacial contact and the high charge separation and strong redox power of the separated charges, both of which stem from the effective S-scheme charge transfer process. In addition, photocorrosion of CdS was substantially mitigated, resulting in the high photocatalytic performance of the hybrid catalyst even after repeated test runs. This study provides insight into the rational design of bifunctional S-scheme hybrid photocatalysts for CO 2 reduction and pollutant degradation. (c) 2023 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science &

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