Design and construction of a robust ternary Bi5O7I/Cd0.5Zn0.5S/CuO photocatalytic system for boosted photodegradation of antibiotics via dual-S-scheme mechanisms: Environmental factors and degradation intermediates

The detection of efficacious and environment-friendly nanomaterials with prominent photocatalytic performance is crucial for the detoxification of antibiotics in wastewater. Herein, a dual-S-scheme Bi5O7I/Cd0.5Zn0.5S/CuO semiconductor was designed and fabricated via a simple approach to degrade tetr...

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Veröffentlicht in:Environmental research 2023-10, Vol.234, p.116554-116554, Article 116554
Hauptverfasser: Jabbar, Zaid H., Graimed, Bassim H., Ammar, Saad H., Alsunbuli, Maye M., Hamood, Sarah A., hamzah Najm, Hayder, Taher, Athraa G.
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Sprache:eng
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Zusammenfassung:The detection of efficacious and environment-friendly nanomaterials with prominent photocatalytic performance is crucial for the detoxification of antibiotics in wastewater. Herein, a dual-S-scheme Bi5O7I/Cd0.5Zn0.5S/CuO semiconductor was designed and fabricated via a simple approach to degrade tetracycline (TC) and other types of antibiotics under LED illumination. However, Cd0.5Zn0.5S and CuO nanoparticles were decorated on the surface of the Bi5O7I microsphere to create a dual-S-scheme system that stimulates visible-light utilization and facilitates the dissolution of excited photo-curriers. Therefore, the Bi5O7I/Cd0.5Zn0.5S/CuO system offers strong redox ability, which reflects reinforced photocatalytic activity and robust stability. The ternary heterojunction discloses enhanced TC detoxification efficiency of 92% in 60 min with TC destruction rate constant of 0.04034 min−1, outperforming pure Bi5O7I, Cd0.5Zn0.5S, and CuO by 4.27, 3.20, and 4.80 folds, respectively. Besides, Bi5O7I/Cd0.5Zn0.5S/CuO manifests outstanding photo-activity against a series of antibiotics like norfloxacin, enrofloxacin, ciprofloxacin, and levofloxacin under the same operational conditions. The active species detection, TC destruction pathways, catalyst stability, and photoreaction mechanisms of Bi5O7I/Cd0.5Zn0.5S/CuO were accurately explained in detail. Summarily, this work introduces a new class of dual-S-scheme system with strengthened catalytic properties to effectively eliminate the antibiotics in wastewater under visible-light illumination. •A new class of Bi5O7I/Cd5Zn0.5S/CuO dual-S-scheme heterojunction was synthesized.•Bi5O7I/Cd5Zn0.5S/CuO manifested optimum antibiotics elimination under LED light.•The tetracycline degradation pathways and photoreaction intermediates were clarified.•The trapping experiments disclosed the importance of O2− in tetracycline destruction.•The S-scheme introduced boosted photo-carriers dissociation with robust redox capability.
ISSN:0013-9351
1096-0953
DOI:10.1016/j.envres.2023.116554