Oxygen-vacancy-rich AgBiO3/Bi5O7I heterojunction for antibiotic photodegradation

Semiconductor photocatalysis antibiotic degradation technology has garnered significant advantages such as efficient energy consumption, environmental remediation and high security. To date, advanced strategies for constructing materials with oxygen vacancies and heterogeneous interfaces have been actively explored. Herein, we proposed the targeted assembly of perovskite AgBiO 3 featuring full-spectrum absorption with oxygen-vacancies-rich Bi 5 O 7 I toward the semiconductor photocatalysis antibiotic degradation, constructing a high-performance heterogeneous photocatalytic system through atomic-level oxygen vacancy engineering and electronic structure modulation at the heterointerface.The as-deigned AgBiO 3 /Bi 5 O 7 I composite achieves 99% tetracycline and 93% ciprofloxacin degradation within 20–30 min under visible light. Combined with ESR and other experimental results, the photocatalytic reaction mechanism is elucidated: the combination of AgBiO 3 and Bi 5 O 7 I forms a Z-scheme heterojunction that enhances electron-hole separation efficiency and broadens the light absorption spectrum, in which superoxide radicals (·O 2 − ) serve as the primary reactive species to attack antibiotic molecules, thereby achieving efficient pollutant degradation. This work establishes a paradigm for designing efficient photocatalytic antibiotic degradation systems, as well as advancing the fundamental understanding of oxygen vacancy engineering, interfacial charge modulation, and reaction kinetics in heterostructured photocatalysts.

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Journal
Scientific Reports
Published
2026-09-14
DOI
https://doi.org/10.1038/s41598-026-69237-4
Primary Topic
Advanced Photocatalysis Techniques
Type
article
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article

Oxygen-vacancy-rich AgBiO3/Bi5O7I heterojunction for antibiotic photodegradation

吴祖杰, Lina Wei, Qishe Yan, Haiyan He et al.
Scientific Reports
Advanced Photocatalysis Techniques
article

Oxygen-vacancy-rich AgBiO3/Bi5O7I heterojunction for antibiotic photodegradation

吴祖杰, Lina Wei, Qishe Yan, Haiyan He, Yiwen Fu, Jing Zhang, Haoyu Du, Peng Jin, Long Li, Yang Zhang
article en

Abstract

Semiconductor photocatalysis antibiotic degradation technology has garnered significant advantages such as efficient energy consumption, environmental remediation and high security. To date, advanced strategies for constructing materials with oxygen vacancies and heterogeneous interfaces have been actively explored. Herein, we proposed the targeted assembly of perovskite AgBiO 3 featuring full-spectrum absorption with oxygen-vacancies-rich Bi 5 O 7 I toward the semiconductor photocatalysis antibiotic degradation, constructing a high-performance heterogeneous photocatalytic system through atomic-level oxygen vacancy engineering and electronic structure modulation at the heterointerface.The as-deigned AgBiO 3 /Bi 5 O 7 I composite achieves 99% tetracycline and 93% ciprofloxacin degradation within 20–30 min under visible light. Combined with ESR and other experimental results, the photocatalytic reaction mechanism is elucidated: the combination of AgBiO 3 and Bi 5 O 7 I forms a Z-scheme heterojunction that enhances electron-hole separation efficiency and broadens the light absorption spectrum, in which superoxide radicals (·O 2 − ) serve as the primary reactive species to attack antibiotic molecules, thereby achieving efficient pollutant degradation. This work establishes a paradigm for designing efficient photocatalytic antibiotic degradation systems, as well as advancing the fundamental understanding of oxygen vacancy engineering, interfacial charge modulation, and reaction kinetics in heterostructured photocatalysts.

Scientific Reports
Pingdingshan University (CN), Shenhua Group (China) (CN), Zhengzhou University (CN), OriginWater (China) (CN)
Affordable and clean energy
Openalex Percentile: Top 29%
Advanced Photocatalysis Techniques
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