Engineering Bi3O4Br/TiO2 nanobelt/glucose hydrochar heterostructures for enhanced visible-light degradation of pharmaceutical pollutants

dc.creatorAhmadi, Sajad
dc.creatorAlonso, Antônio
dc.creatorYaah, Velma Beri Kimbi
dc.creatorOliveira, Sérgio Botelho de
dc.creatorSliz, Rafal
dc.creatorOjala, Satu
dc.date.accessioned2026-09-02T10:58:33Z
dc.date.available2026-09-02T10:58:33Z
dc.date.issued2026
dc.description.abstractThe existence of pharmaceutical residues, such as paracetamol, in water bodies is extremely risky to the environment and human health, and thus efficient and sustainable remediation technologies should be developed. In this study, a novel ternary Z-scheme photocatalyst consisting of bismuth-rich oxybromide (Bi3O4Br), TiO2 nanobelts (TiO2 NB), and glucose-derived hydrochar (GH) was synthesized to degrade paracetamol under visible light irradiation. The effect of the synthesis procedure was explored through a two-step and one-step hydrothermal synthesis method. The photocatalyst prepared with the two-step procedure showed better efficiency and the increased growth of Bi3O4Br nanosheets around the hydrochar, resulting in better interface electronic coupling and charge separation efficiency compared to the synthesized one-step material and Bi3O4Br/TiO2 NB heterostructure. Photocatalytic experiments showed that the two-step 10% composite displayed the highest paracetamol degradation efficiency of approximately 91% at natural pH, outperforming the pristine TiO2 NB, Bi3O4Br, and the Bi3O4Br/TiO2 NB heterostructure photocatalyst under visible light irradiation. Scavenger tests and electron paramagnetic resonance (EPR) analysis revealed the role of the reactive species (h+, •OH, and O2•-) during the photocatalytic tests, indicating the primary contributions of holes and superoxide radicals and the minor contribution of hydroxyl radicals. The Z-scheme mechanism was also proven by selective photodeposition of Pt and MnOx. The photocatalysts remained active during five cycles of photocatalytic experiments and demonstrated potential for treating real pharmaceutical wastewater, indicating their promising application in the sustainable remediation of pharmaceutical wastewater.
dc.identifier.citationAHMADI, Sajad et al. Engineering Bi3O4Br/TiO2 nanobelt/glucose hydrochar heterostructures for enhanced visible-light degradation of pharmaceutical pollutants. Journal of Environmental Management, Amsterdam, v. 410, e130074, 2026. DOI: 10.1016/j.jenvman.2026.130074. Disponível em: https://www.sciencedirect.com/science/article/pii/S0301479726015343. Acesso em: 31 ago. 2026.
dc.identifier.doi10.1016/j.jenvman.2026.130074
dc.identifier.issn0301-4797
dc.identifier.issne- 1095-8630
dc.identifier.urihttps://repositorio.bc.ufg.br//handle/ri/31518
dc.language.isoeng
dc.publisher.countryHolanda
dc.publisher.departmentInstituto de Física - IF (RMG)
dc.publisher.programPrograma de Pós-graduação em Física
dc.rightsAcesso Aberto
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subjectGlucose hydrochar
dc.subjectPhotocatalysis
dc.subjectParacetamol
dc.subjectTiO2 nanobelts
dc.subjectBi3O4B
dc.subject.ODS6 - Água potável e saneamento
dc.subject.ODS3 - Saúde e bem-estar
dc.subject.ODS12 - Consumo e produção responsáveis
dc.subject.ODS9 - Industria, inovação e infraestrutura
dc.subject.ODS14 - Vida na água
dc.titleEngineering Bi3O4Br/TiO2 nanobelt/glucose hydrochar heterostructures for enhanced visible-light degradation of pharmaceutical pollutants
dc.typeArtigo

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