In Situ Fabrication of TiO2/(Bi2O3/Bi2O2.33) S-Scheme Heterojunction with Enhanced Bifunctional Photocatalysis for CO2 Reduction and Dye Removal

Abstract S-scheme heterojunctions enable efficient charge carrier separation while preserving strong redox ability, making them a research hotspot in photocatalysis. This work reports a simple and novel approach to prepare TiO2/(Bi2O3/Bi2O2.33) (TBBO) heterojunctions using Ti foil as precursors via a combined hydrothermal and calcination treatment. Photocatalytic tests demonstrate that the as-prepared TBBO catalysts exhibit significantly higher activity than pristine TiO2. TBBO-0.02 exhibits the best CO2 photoreduction performance and stability, achieving a CO generation rate of 152.5 μmol·g–1·h–1, due to its abundant oxygen vacancies and efficient S-scheme heterojunction interface. Furthermore, TBBO-0.02 also displays outstanding activity in the photodegradation of methylene blue (MB), with a degradation efficiency of 95% within 70 min. This work presents a new route for the green and facile preparation of highly efficient and stable S-scheme heterojunctions.

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Publication Details

Journal
Langmuir
Published
2026-09-29
DOI
https://doi.org/10.1021/acs.langmuir.6c05055
Primary Topic
Advanced Photocatalysis Techniques
Type
article
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In Situ Fabrication of TiO2/(Bi2O3/Bi2O2.33) S-Scheme Heterojunction with Enhanced Bifunctional Photocatalysis for CO2 Reduction and Dye Removal

Dingming Peng, 徐大鹏, Yumei Qin, Kai Zhang et al.
Langmuir
Advanced Photocatalysis Techniques
article

In Situ Fabrication of TiO2/(Bi2O3/Bi2O2.33) S-Scheme Heterojunction with Enhanced Bifunctional Photocatalysis for CO2 Reduction and Dye Removal

Dingming Peng, 徐大鹏, Yumei Qin, Kai Zhang, Meiyun Luo, Lei Wang, Zhiyang Wang, Yating Meng, Meihong Lu, Hongjie Wei
article en

Abstract

Abstract S-scheme heterojunctions enable efficient charge carrier separation while preserving strong redox ability, making them a research hotspot in photocatalysis. This work reports a simple and novel approach to prepare TiO2/(Bi2O3/Bi2O2.33) (TBBO) heterojunctions using Ti foil as precursors via a combined hydrothermal and calcination treatment. Photocatalytic tests demonstrate that the as-prepared TBBO catalysts exhibit significantly higher activity than pristine TiO2. TBBO-0.02 exhibits the best CO2 photoreduction performance and stability, achieving a CO generation rate of 152.5 μmol·g–1·h–1, due to its abundant oxygen vacancies and efficient S-scheme heterojunction interface. Furthermore, TBBO-0.02 also displays outstanding activity in the photodegradation of methylene blue (MB), with a degradation efficiency of 95% within 70 min. This work presents a new route for the green and facile preparation of highly efficient and stable S-scheme heterojunctions.

Langmuir
Guangxi Normal University (CN), Technical and Vocational University (IR), Nanning Normal University (CN)
Openalex Percentile: Top 30%
Advanced Photocatalysis Techniques
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In Situ Fabrication of TiO2/(Bi2O3/Bi2O2.33) S-Scheme Heterojunction with Enhanced Bifunctional Photocatalysis for CO2 Reduction and Dye Removal — Dingming Peng, 徐大鹏, et al. · Langmuir (2026) | TGRS Research Map | TGRS