Catalytic degradation of diclofenac by ZnO-Co3O4: identification of major intermediates and degradation pathway

ZnO-Co 3 O 4 material was successfully synthesized by the co-precipitation method and used as a catalyst for the removal of diclofenac sodium (DCF). ZnO-Co 3 O 4 exhibited higher catalytic activity in the catalytic process compared to the photocatalytic processes. Under optimum conditions, the activ...

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Veröffentlicht in:Environmental science and pollution research international 2025-01, Vol.32 (4), p.1971-1984
Hauptverfasser: Fergani, Soumia, Zazoua, Hanane, Saadi, Adel, Badri, Fatma Zohra, Boudjemaa, Amel, Bachari, Khaldoun
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Sprache:eng
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Zusammenfassung:ZnO-Co 3 O 4 material was successfully synthesized by the co-precipitation method and used as a catalyst for the removal of diclofenac sodium (DCF). ZnO-Co 3 O 4 exhibited higher catalytic activity in the catalytic process compared to the photocatalytic processes. Under optimum conditions, the activation of peroxymonosulfate (PMS) by ZnO-Co 3 O 4 achieved approximately 99% removal of DCF, confirming the effective adsorption and activation of PMS. Quenching experiments indicated that the reactive oxygen species (ROS) responsible for the degradation of DCF by the ZnO-Co 3 O 4 /PMS system are singlet oxygen ( 1 O 2 ) and superoxide radicals (O 2 •− ). The activation of PMS by ZnO-Co 3 O 4 was associated with the coexistence and interaction between Co(II) and Co(III), as well as the formation of oxygen vacancies (V 0 ) in ZnO. Cobalt leaching was negligible, and the degradation rate remained constant after four cycles, indicating the excellent stability and reusability of the ZnO-Co₃O₄ catalyst. Additionally, eight degradation products of DCF were identified by LC–ESI–MS, and their toxicity was evaluated using ECOSAR software (version 2.2). In conclusion, the ZnO-Co 3 O 4 /PMS system is a promising catalytic process for the degradation of organic molecules.
ISSN:1614-7499
0944-1344
1614-7499
DOI:10.1007/s11356-024-35713-5