Research Progress of Bio-electro-Fenton System and Its Application in Wastewater Treatment
DOI:
https://doi.org/10.54691/bg1t5864Keywords:
Bio-electro-Fenton, wastewater treatment, in your paperelectrode materials.Abstract
The bio-electro-Fenton (BEF) system integrates bioelectrochemistry with Fenton advanced oxidation technology. It can achieve self-sustained electricity generation via anaerobic microbial metabolism and construct an efficient advanced oxidation system relying on in-situ hydrogen peroxide production at the cathode. This system effectively addresses the limitation of conventional biological methods that struggle to treat refractory and highly toxic organic wastewater, thus holding promising application prospects in water pollution remediation. This paper systematically reviews the core reaction mechanisms of BEF systems, elaborates the microbial electrogenic oxidation mechanism at the bioanode as well as the oxygen reduction and Fenton catalytic oxidation mechanisms at the cathode, and summarizes recent research advances in modification and optimization of anode and cathode electrode materials. Emphasis is placed on analyzing the effects of carbon-based modification, nanocomposites and biochar-based electrode materials in boosting electron transfer efficiency and enhancing electricity generation performance and hydrogen peroxide production efficiency. Meanwhile, this paper compares and evaluates the merits and demerits of homogeneous iron-based catalysis and supported heterogeneous catalytic systems. It points out that traditional homogeneous catalysis suffers from narrow applicable pH range, high reagent consumption and high risk of secondary pollution. In contrast, supported heterogeneous catalysts have become a research hotspot for BEF catalytic materials owing to their advantages including stable active sites, low metal leaching, recyclability and strong adaptability under neutral conditions. At present, BEF technology still faces challenges such as easy electrode passivation, weak anti-interference capacity in complex water matrices, high material fabrication cost, and ambiguous interfacial mechanisms underlying multi-mechanism coupling. Future research should further develop long-term stable, low-cost functional electrodes and composite catalytic materials, deeply uncover the synergistic mechanisms among microbial metabolism, electron transfer and Fenton catalysis, and promote the transformation of bio-electro-Fenton technology from fundamental laboratory research to large-scale engineering applications for practical wastewater treatment.
Downloads
References
[1] Kyere Yeboah, K., Bique, I. K., & Qiao, X. C. (2023). Advances of non thermal plasma discharge technology in degrading recalcitrant wastewater pollutants: A comprehensive review. Chemosphere, 320, 138061. https://doi.org/10.1016/j.chemosphere.2023.138061.
[2] Preethi, S. S. P., Kumar, G., N, Y. K., M, G., & J, R. B. (2024). Recent progress in mineralization of emerging contaminants by advanced oxidation process: A review. Environmental Pollution, 341, 122842.
[3] Ribeiro, J. P., Sarinho, L., & Nunes, M. I. (2024). Application of life cycle assessment to Fenton processes in wastewater treatment – A review. Journal of Water Process Engineering, 57, 104692.
[4] Zhu, X. P., & Ni, J. R. (2009). Simultaneous processes of electricity generation and p nitrophenol degradation in a microbial fuel cell. Electrochemistry Communications, 11(2), 274–277.
[5] Li, X., Chen, S., Angelidaki, I., & Zhang, Y. (2018). Bio electro Fenton processes for wastewater treatment: Advances and prospects. Chemical Engineering Journal, 354, 492–506.
[6] Chen, R., Han, M., Shi, Y., Guo, W., Wu, Y., & Zhang, T. (2024). Construction of integrated oxygen rich carbon based metal free cathode to simultaneous boost wastewater treatment performance and energy recovery in bio electro Fenton system. Chemical Engineering Journal, 487, 150532.
[7] Xu, J., Zheng, X., Feng, Z., Lu, Z., Zhang, Z., & Huang, W. (2021). Organic wastewater treatment by a single atom catalyst and electrolytically produced H₂O₂. Nature Sustainability, 4(3), 233–241.
[8] Reguera, G., Nevin, K. P., Nicoll, J. S., Covalla, S. F., Woodard, T. L., & Lovley, D. R. (2006). Biofilm and nanowire production leads to increased current in Geobacter sulfurreducens fuel cells. Applied and Environmental Microbiology, 72(11), 7345–7348.
[9] Yarzabal, A., Brasseur, G., Ratouchniak, J., Lund, K., Lemesle Meunier, D., & Demoss, J. A. (2002). The high molecular weight cytochrome c Cyc2 of Acidithiobacillus ferrooxidans is an outer membrane protein. Journal of Bacteriology, 184(1), 313–317.
[10] Simoska, O., Cummings, D. A., Gaffney, E. M., Langue, C., Primo, T. G., & Weber, C. J. (2023). Enhancing the performance of microbial fuel cells via metabolic engineering of escherichia coli for phenazine production. ACS Sustainable Chemistry & Engineering, 11(32), 11855–11866.
[11] Subramanian, P., Pirbadian, S., & El Naggar, M. Y., & Jensen, G. J. (2018). Ultrastructure of Shewanella oneidensis MR 1 nanowires revealed by electron cryotomography. Proceedings of the National Academy of Sciences, 114(14), E3246–E3255.
[12] Bose, A., Gardel, E. J., Vidoudez, C., Parra, E. A., & Girguis, P. R. (2014). Electron uptake by iron oxidizing phototrophic bacteria. Nature Communications, 5(1), 3391.
[13] Geng, B. Y., Cao, L. Y., Li, F., Song, H., Liu, C. G., & Zhao, X. Q. (2020). Potential of Zymomonas mobilis as an electricity producer in ethanol production. Biotechnology for Biofuels, 13, 36.
[14] Hu, Y., Wang, Y., Han, X., Shan, Y., Li, F., & Shi, L. (2021). Biofilm biology and engineering of geobacter and shewanella spp. for energy applications. Frontiers in Bioengineering and Biotechnology, 9, 786416.
[15] Hubenova, Y., & Mitov, M. (2015). Extracellular electron transfer in yeast based biofuel cells: A review. Bioelectrochemistry, 106, 177–185.
[16] Chaudhary, S., Yadav, S., Singh, R., Sadhotra, C., & Patil, S. A. (2022). Extremophilic electroactive microorganisms: Promising biocatalysts for bioprocessing applications. Bioresource Technology, 347, 126663.
[17] Jiang, Y., Ni, P., Chen, C., Lu, Y., Yang, P., & Kong, B. (2018). Selective electrochemical H₂O₂ production through two electron oxygen electrochemistry. Advanced Energy Materials, 8(31), 1801909. https://doi.org/10.1002/aenm.201801909
[18] Yang, X., Zou, R., Tang, K., Andersen, H. R., Angelidaki, I., & Zhang, Y. (2021). Degradation of metoprolol from wastewater in a bio electro Fenton system. Science of the Total Environment, 771, 145385.
[19] Zhao, N., Ma, Z., Song, H., Xie, Y., & Zhang, M. (2019). Enhancement of bioelectricity generation by synergistic modification of vertical carbon nanotubes/polypyrrole for the carbon fibers anode in microbial fuel cell. Electrochimica Acta, 296, 69–74.
[20] Ren, Y., Yan, Y., Wang, Y., Zhang, H., & Li, X. (2021). Thermally treated candle soot as a novel catalyst for hydrogen peroxide in situ production enhancement in the bio electro Fenton system. Chemosphere, 262, 127839.
[21] Wang, G., Li, B., & Zhang, Y. (2023). Ammonia mediated iron cycle for oxidizing agent activation in advanced oxidation process. Water Research, 242, 120295.
[22] Li, X., Chen, S., Angelidaki, I., & Zhang, Y. (2018). Bio electro Fenton processes for wastewater treatment: Advances and prospects. Chemical Engineering Journal, 354, 492–506.
[23] Zhao, L. F., Wan, N., Huang, Y. T., Yue, T. T., & Feng, W. (2023). Degradation of tetracycline in heterogeneous electro Fenton system with Fe₃O₄ loaded carbon felt cathode. Journal of Jilin University, 61, 982–988.
[24] Dai, H. R., Li, H., & Liu, Y. (2025). Low temperature activated Fe/Co LDH derived bimetallic catalyst for enhanced Rhodamine B mineralization in bio electro Fenton system. Separation and Purification Technology, 468, 129156.
[25] Wang, Y., Zhang, K., & Liu, L. (2025). Metal organic framework derived carbon catalysts for boosting H₂O₂ adsorption and activation in bio electro Fenton systems. Journal of Water Process Engineering, 62, 105418.
[26] Zhao, Y. X., Wang, L., & Zhang, H. (2023). Recycling of Fe₃O₄ nanomaterial from coal fly ash as catalyst for sustainable bio electro Fenton treatment. Journal of Cleaner Production, 412, 137489.
[27] Chen, R., Han, M., Shi, Y., & Guo, W. (2024). Challenges of supported heterogeneous cathodic catalysts in bio electro Fenton: Particle agglomeration, electrode passivation and catalytic decay. Chemical Engineering Journal, 496, 153921.
[28] Ren, Y., Yan, Y., Wang, Y., Zhang, H., & Li, X. (2021). Thermally treated candle soot as catalyst for in situ H₂O₂ activation in bio electro Fenton system. Chemosphere, 262, 127839.
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Frontiers in Science and Engineering

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.






