Synergistically enhanced photoelectrocatalytic degradation of ciprofloxacin via oxygen vacancies and internal electric field on a NiSe2/WO3 photoanode

dc.contributor.authorYusuf, Tunde Lewis
dc.contributor.authorOjo, Babatope O.
dc.contributor.authorMushiana, Talifhani
dc.contributor.authorMabuba, Nonhlangabezo
dc.contributor.authorArotiba, Omotayo A.
dc.contributor.authorMakgato, Seshibe Stanford
dc.contributor.emailyusuf.tl@up.ac.zaen_US
dc.date.accessioned2024-11-29T04:39:23Z
dc.date.available2024-11-29T04:39:23Z
dc.date.issued2024-08
dc.descriptionDATA AVAILABITY STATEMENT: The data supporting this study's findings are available from the corresponding author upon reasonable request. The datasets generated during and/or analyzed during the current study are not publicly available but are available from the corresponding author on reasonable request. Additionally, supplementary data and materials can be found in the ESI† files associated with this publication.en_US
dc.description.abstractThis study presents the in situ deposition of nickel selenide (NiSe2) on tungsten trioxide (WO3) nanorods to enhance the photo electrocatalytic degradation of organic pollutants in water. The synthesis involves integrating nickel selenide (NiSe2) and tungsten trioxide (WO3) nanorod to form a heterojunction, utilizing a facile in situ growth method. The resulting NiSe2/WO3 heterojunction exhibits enhanced photocatalytic properties attributed to efficient charge separation, improved charge transfer dynamics, and synergistic catalytic activity created by an internal electric field and oxygen vacancy. The heterojunction demonstrates remarkable performance in the degradation of ciprofloxacin under visible light irradiation. Under optimum conditions, the photodegradation of ciprofloxacin reached 89% (0.0179 min−1) compared to pristine WO3, which only achieved 48% (0.0069 min−1) under the same conditions. The study systematically investigates the structural and morphological characteristics of the NiSe2/WO3 heterojunction and elucidates its superior photocatalytic efficacy through comprehensive experimental analyses. The primary reactive species responsible for CIP degradation were identified as photo generated h+ and ˙OH. The successful development of the NiSe2/WO3 heterojunction holds significant promise for advancing environmentally sustainable technologies in water treatment and pollution remediation.en_US
dc.description.departmentChemistryen_US
dc.description.sdgSDG-06:Clean water and sanitationen_US
dc.description.sdgSDG-12:Responsible consumption and productionen_US
dc.description.urihttp://pubs.rsc.org/en/Journals/JournalIssues/CYen_US
dc.identifier.citationYusuf, T.L., Ojo, B.O., Mushiana, T. et al. 2024, 'Synergistically enhanced photoelectrocatalytic degradation of ciprofloxacin via oxygen vacancies and internal electric field on a NiSe2/WO3 photoanode', Catalysis Science & Technology, vol. 14, no. 20, pp. 6015-6026, doi : 10.1039/d4cy00729h.en_US
dc.identifier.issn2044-4753 (print)
dc.identifier.issn2044-4761 (online)
dc.identifier.other10.1039/d4cy00729h
dc.identifier.urihttp://hdl.handle.net/2263/99677
dc.language.isoenen_US
dc.publisherRoyal Society of Chemistryen_US
dc.rights© The Royal Society of Chemistry 2024. This article is published open access.en_US
dc.subjectHeterojunctionen_US
dc.subjectSDG-06: Clean water and sanitationen_US
dc.subjectSDG-12: Responsible consumption and productionen_US
dc.subjectNickel selenide (NiSe2)en_US
dc.subjectTungsten trioxide (WO3)en_US
dc.subjectPhotocatalytic degradationen_US
dc.titleSynergistically enhanced photoelectrocatalytic degradation of ciprofloxacin via oxygen vacancies and internal electric field on a NiSe2/WO3 photoanodeen_US
dc.typeArticleen_US

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