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May 17, 2026Journal of environmental chemical engineering5 citationsOpen Access

Bi4O5Br2-Based Photocatalysts for Multifunctional Applications: Band Engineering, Synthesis, and Photocatalytic Performance

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PPranshiSSShabnam SambyalAKAftab Aslam Parwaz Khan

Key Points

  • This review aims to summarize the advancements in Bi4O5Br2 photocatalysts and their multifunctional applications.
  • Reviewed various synthesis methods including solvothermal, hydrothermal, and microwave heating.
  • Discussed modification strategies such as doping and heterojunction formation to enhance photocatalytic activity.
  • Analyzed photocatalytic performance metrics through experimental and theoretical approaches.
  • Bi4O5Br2 exhibited significant photocatalytic activity for dye degradation and pollutant removal.
  • The material demonstrated promising potential for hydrogen evolution and CO2 reduction in energy conversion applications.
  • Challenges in scalability and efficiency were identified, alongside future research directions.

Abstract

Photocatalysis is an emerging technology that harnesses solar energy to tackle energy storage and environmental issues. Among various photocatalysts, Bismuth oxybromide (Bi 4 O 5 Br 2 ) received much attention due to its finite visible light efficiency, good electrical conductivity, tunable morphology and optimal bandgap, making it suitable for various applications. Hence, Bismuth oxybromide has undergone optimisation and extensive modification to enhance its photocatalytic activity. The photocatalytic mechanism and crystalline properties are contemplated by XRD and DFT calculations. This review delivers a comprehensive overview of the recent progress of the Bi 4 O 5 Br 2 photocatalyst with its crystallographic structure. The synthesis processes of Bi 4 O 5 Br 2 – based photocatalyst are demonstrated, which include solvothermal, hydrothermal, hydrolysis method, microwave heating method, as well as microemulsion method. Further, we emphasised modification strategies to enhance photocatalytic performance, such as doping, surface defect and heterojunction formation. Subsequently, Bi 4 O 5 Br 2 -based material and its potential application in environmental remediation: photodegradation of dyes, antibiotics, organic pollutants and heavy metal removal and energy conversion, such as photocatalytic water splitting for H₂ evolution and CO₂ reduction. Lastly, we conclude possible challenges and Future Perspectives associated with the Bi 4 O 5 Br 2 -based photocatalyst. • Bi 4 O 5 Br 2 -photocatalyst provides various solutions for environmental issues and energy crises. • Controllable synthesis methods, modification strategies and morphology control for enhancing the photocatalytic activity. • Bi 4 O 5 Br 2 highlights potential for H 2 evolution, CO 2 reduction, degradation of pollutant and energy storage applications. • Reviews the challenges and future perspective for Bi 4 O 5 Br 2 -photocatalyst.

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Cite This Study

Pranshi et al. (2026) studied this question.

synapsesocial.com/papers/6a095c037880e6d24efe1f74https://doi.org/10.1016/j.jece.2026.123165
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Advances in BiOCl‐Based Photocatalysts: From Synthesis, Structural Tailoring to Solar Energy Conversion2026
  2. 2Recent Progress and Challenges of Bismuth‐Based Photocatalysts: Fundamentals and Applications2025 · 33 citations
  3. 3Controllable Preparation and Optimisation of Bi4O5Br2 for Photocatalytic Reduction of CO2 to CO2025
  4. 4Review of the Structure and Modification Methods of Bismuth-based Photocatalysts2025
  5. 5Controlled Formation of α- and β-Bi2O3 with Tunable Morphologies for Visible-Light-Driven Photocatalysis2025