Open Access
Issue
E3S Web Conf.
Volume 695, 2026
2nd International Conference on Sustainable Chemistry (ICSChem 2025)
Article Number 01002
Number of page(s) 15
Section Energy
DOI https://doi.org/10.1051/e3sconf/202669501002
Published online 24 February 2026
  1. F. Gozzi, D.R.V. Guelfi, T.F. da Silva, S.C. de Oliveira, A. Machulek Junior, Recent developments on the application of photoelectrochemical processes for sustainable water treatment, Curr. Opin. Electrochem. 46 (2024) 101502. https://doi.org/10.1016/J.COELEC.2024.101502. [Google Scholar]
  2. G. Gunawan, N.B.A. Prasetya, R.A. Wijaya, W. Septina, Investigation of electrocoagulation with hydroxide-activated aluminum-copper (Al/Cu) internal micro-electrolysis system for aquaculture, dye, and antibiotic wastewater treatment, Journal of Water Process Engineering 71 (2025) 107155. https://doi.org/10.1016/J.JWPE.2025.107155. [Google Scholar]
  3. G.A. Kallawar, B.A. Bhanvase, A review on existing and emerging approaches for textile wastewater treatments: challenges and future perspectives, Environmental Science and Pollution Research 31 (2023) 1748–1789. https://doi.org/10.1007/S11356-023-31175-3. [Google Scholar]
  4. G. Gunawan, N.B.A. Prasetya, D.S. Widodo, R.A. Wijaya, Electrochemical Degradation of Methylene Blue With Seawater and Pb/PbO2 Electrodes From Battery Waste, Karbala International Journal of Modern Science 9 (2023) 725–741. https://doi.org/10.33640/2405-609X.3333. [Google Scholar]
  5. B. Guan, J. Chen, Z. Li, Z. Zhuang, Y. Chen, Z. Ma, J. Guo, C. Zhu, X. Hu, S. Zhao, H. Dang, L. Chen, K. Shu, Z. Guo, K. Shi, Y. Li, C. Yi, J. Hu, Z. Huang, Review on Synthesis, Modification, Morphology, and Combination of BiVO4-based Catalysts for Photochemistry: Status, Advances, and Perspectives, Energy & Fuels 38 (2023) 806–853. https://doi.org/10.1021/ACS.ENERGYFUELS.3C03932. [Google Scholar]
  6. A.Z. Ali, S. Jagannathan, Y.D. Bennani, J.P. van der Hoek, H. Spanjers, Photoelectrocatalytic based simultaneous removal of multiple organic micro-pollutants by using a visible light driven BiVO4 photoanode, Journal of Water Process Engineering 56 (2023) 104471. https://doi.org/10.1016/J.JWPE.2023.104471. [Google Scholar]
  7. J. Cai, J. Wang, F. Li, X. Zhang, B. Feng, Z. Yu, Y. Li, Preparation of BiVO4 Films and Modulation of Their Photocatalytic Properties by Pulsed Laser Deposition, Magnetron Sputtering, and Atomic Layer Deposition, ACS Appl. Electron. Mater. 7 (2025) 5331–5353. https://doi.org/10.1021/ACSAELM.5C00566. [Google Scholar]
  8. D. Caus, K. Berent, K. Mech, A. Naumov, M. Marciszko-Wiąckowska, A. Podborska, Comparative Studies on Synthesis Methods of BiVO4 for Photoelectrochemical Applications, Molecules 2025, Vol. 30, Page 3818 30 (2025) 3818. https://doi.org/10.3390/MOLECULES30183818. [Google Scholar]
  9. G. Gunawan, N. Basid Adiwibawa Prasetya, R. Adi Wijaya, Electrosynthesis of ferrate from iron waste and seawater salts as Antibacterials for water pollutant treatment, Chemical Engineering Journal 498 (2024) 155422. https://doi.org/10.1016/J.CEJ.2024.155422. [Google Scholar]
  10. N. Thi Huyen, T.V.H. Luu, Tran Le, H. Phuc Dang, Structure–property–performance correlation in BiVO4 photoanodes synthesized by intensity-tuned pulse electrodeposition, Nanoscale Adv. (2025). https://doi.org/10.1039/D5NA00667H. [Google Scholar]
  11. P. Arunachalam, M.S. Amer, A.M. Al-Mayouf, A.A. Alsaleh, Surface Engineering of BiVO4 Photoanodes for Photoelectrochemical Water Splitting: Recent Advances, ChemCatChem 16 (2024) e202400312. https://doi.org/10.1002/CCTC.202400312. [Google Scholar]
  12. X. Li, S. Hou, X. Xie, H. Yang, Y. Huang, Lattice strain engineering via electrochemical treatment boosts solar water oxidation of BiVO4 through accelerated intermediate conversion, J. Catal. 453 (2026) 116540. https://doi.org/10.1016/J.JCAT.2025.116540. [Google Scholar]
  13. N. Thi Huyen, abc Thi Viet Ha Luu, T. Le ab, H. Phuc Dang, Structure–property– performance correlation in BiVO4 photoanodes synthesized by intensity-tuned pulse electrodeposition, Nanoscale Adv. 7 (2025) 7182–7195. https://doi.org/10.1039/D5NA00667H. [Google Scholar]
  14. A. Ilyas, K. Rafiq, M.Z. Abid, A. Rauf, E. Hussain, Growth of villi-microstructured bismuth vanadate (Vm-BiVO4) for photocatalytic degradation of crystal violet dye, RSC Adv. 13 (2023) 2379–2391. https://doi.org/10.1039/D2RA07070G. [Google Scholar]
  15. A. Haleem, M. Ullah, S. ur Rehman, A. Shah, M. Farooq, T. Saeed, I. Ullah, H. Li, In-Depth Photocatalytic Degradation Mechanism of the Extensively Used Dyes Malachite Green, Methylene Blue, Congo Red, and Rhodamine B via Covalent Organic Framework-Based Photocatalysts, Water 2024, Vol. 16, Page 1588 16 (2024) 1588. https://doi.org/10.3390/W16111588. [Google Scholar]

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