Quantifying Synergistic Energy Losses Induced by Internal Resistance in Microbial Fuel Cell Bioanodes: The Role of Physical Connectivity and Ionic Strength
by Nor Syazwanie Mohd Saidi, Muhammad Farhan Hil Me, Yashawini Phriya Rauichandran, Ryan Yow Zhong Yeo, Mohammad Sherjeel Javed Khan, and Swee Su Lim
Full text: PDF
https://doi.org/10.17576/myjea.2026.01.1
Abstract
Internal resistance Rint is a critical bottleneck that dictates the power output and efficiency of microbial fuel cells (MFCs). This study investigates the synergistic impact of gradated internal resistance on bioanode performance by systematically manipulating electrode contact integrity to establish three distinct Rint levels: 20 Ω (Group 1), 60 Ω (Group 2), and 182 Ω (Group 3). Results indicate that elevated Rint triggers a cascade of potential energy losses; Group 3 exhibited a 22% reduction in peak power density (0.07 W/m2) compared to the optimized Group 1 (0.09 W/m2). Electrochemical Impedance Spectroscopy (EIS) identified the anodic interface as the primary site of degradation, with interfacial resistance (R2) surging from 3 Ω in Group 1 to 140.19 Ω in Group 3. Cyclic Voltammetry (CV) revealed that high Rint might have altered the redox behavior in the electrogenic biofilm, evidenced by a +0.36 V positive transition in midpoint potential (Emid), suggesting increased electrochemical energy demand and altered apparent redox behavior. Furthermore, sensitivity analysis via One-Factor-at-a-Time (OFAT) optimization identified a 10:5:50 mM (NaAc:NH4Cl:PBS) electrolyte ratio as optimal, driving current density to a peak of ≈ 2.1 A/m2 by mitigating secondary chemical bottlenecks. These findings suggest that poor connection is not merely a hardware failure but an electrochemical stress factor that affects the catalytic response of the bioelectrochemical interface.
Keywords: Bioanode kinetics, internal resistance gradation, electrochemical impedance spectroscopy (EIS), charge transfer resistance, microbial electron transfer pathways.
References
- Ashiq, N. M., Aldarmaki, A. A. J. A. R., Alketbi, M. S. S., Alshehhi, H. A. A., Alkaabi, A. S. O., Alshamsi, N. S. M. S., & Hassan, A. A. (2025). Challenges in Operating a Microbial Electrolysis Cell (MEC): Translating Biofilm Activity to Electron Flow and Hydrogen. Sustainability, 17, 32. https://doi.org/https://doi.org/10.3390/su172411216
- Baba, I. A., Abdulkareem, A. S., & Tijani, J. O. (2026). Photo-Fenton treatment of emerging pollutants in municipal wastewater using nanocatalysts: A sustainable approach. Results in Chemistry, 20, 102999. https://doi.org/https://doi.org/10.1016/j.rechem.2025.102999
- Boutarbouch, M., El-Moustaqim, K., Azoulay, K., Boudoudou, D., Abarkan, A., Moufti, A., & Mabrouki, J. (2026). Solar-Powered Electrochemical Processes for Sustainable Wastewater Treatment and Green Hydrogen Production: A Review [10.1051/bioconf/202621504009]. BIO Web Conf., 215.
- Cao, B., Majors, P. D., Ahmed, B., Renslow, R. S., Silvia, C. P., Shi, L., Kjelleberg, S., Fredrickson, J. K., & Beyenal, H. (2012). Biofilm shows spatially stratified metabolic responses to contaminant exposure. Environmental Microbiology, 14(11), 2901–2910. https://doi.org/https://doi.org/10.1111/j.1462-2920.2012.02850.x
- Cao, M., Yin, J., Song, T., & Xie, J. (2022). Effects of the presence of phosphate buffer solution on removal efficiency of Pb and Zn in soil by solid phase microbial fuel cells. Biotechnology Letter, 44, 11. https://doi.org/https://doi.org/10.1007/s10529-022-03315-1
- Chadwick, G. L., Jiménez Otero, F., Gralnick, J. A., Bond, D. R., & Orphan, V. J. (2019). NanoSIMS imaging reveals metabolic stratification within current-producing biofilms. Proceedings of the National Academy of Sciences, 116(41), 20716–20724. https://doi.org/10.1073/pnas.1912498116
- Chen, T., Liu, H., & Li, J. (2024). Research on minimizing the MFC internal resistance via a shared electrode MFC-MEC coupling system [Article]. Biochemical Engineering Journal, 203, Article 109195. https://doi.org/10.1016/j.bej.2023.109195
- Choudhury, P., Ray, R. N., Bandyopadhyay, T. K., & Bhunia, B. (2020). Fed batch approach for stable generation of power from dairy wastewater using microbial fuel cell and its kinetic study. Fuel, 266, 117073. https://doi.org/https://doi.org/10.1016/j.fuel.2020.117073
- Daud, S. M., Daud, W. R. W., Kim, B. H., Somalu, M. R., Bakar, M. H. A., Muchtar, A., Jahim, J. M., Lim, S. S., & Chang, I. S. (2018). Comparison of performance and ionic concentration gradient of two-chamber microbial fuel cell using ceramic membrane (CM) and cation exchange membrane (CEM) as separators. Electrochimica Acta, 259, 365–376. https://doi.org/https://doi.org/10.1016/j.electacta.2017.10.118
- Elreedy, A., Härrer, D., Ali, R., Hille-Reichel, A., & Gescher, J. (2024). Efficacious enrichment of butyrate-oxidizing exoelectrogens upgrades energy recovery in relevant bioelectrochemical systems. Environmental Technology & Innovation, 36, 103871. https://doi.org/https://doi.org/10.1016/j.eti.2024.103871
- Environmental Requirements: A Guide For Investors (2010). Department of Environment Ministry of Natural Resources and Environment
- Feng, F., Wu, C.-H., Li, F., Wang, X., Zhu, J., Zhang, R., & Chen, S.-C. (2024). Research on the integration of microbial fuel cells with conventional wastewater treatment technology: Advantages of anaerobic fermentation. Energy Conversion and Management: X, 23, 100680. https://doi.org/https://doi.org/10.1016/j.ecmx.2024.100680
- Gadkari, S., Fontmorin, J.-M., Yu, E., & Sadhukhan, J. (2020). Influence of temperature and other system parameters on microbial fuel cell performance: Numerical and experimental investigation. Chemical Engineering Journal, 388, 124176. https://doi.org/https://doi.org/10.1016/j.cej.2020.124176
- Guo, F., Luo, H., Shi, Z., Wu, Y., & Liu, H. (2021). Substrate salinity: A critical factor regulating the performance of microbial fuel cells, a review. Science of The Total Environment, 763, 143021. https://doi.org/https://doi.org/10.1016/j.scitotenv.2020.143021
- Hegazy, G. E., Soliman, N. A., Abdel-Fattah, Y. R., & Taha, T. H. (2025). Enhanced voltage generation in microbial fuel cells (MFCs) using bacterial isolates from seawater and industrial wastewater. Microbial Cell Factories, 25(1), 21. https://doi.org/10.1186/s12934-025-02892-w
- Ishaq, A., Said, M. I. M., Azman, S. B., Houmsi, M. R., Isah, A. S., Jagun, Z. T., Mohammad, S. J., Bello, A. A. D., & Abubakar, U. A. (2025). The influence of various chemical oxygen demands on microbial fuel cells performance using leachate as a substrate. Environmental Science and Pollution Research, 23, 16.
- Kanani, B., Zahedi, A., Abtahi, F., & Abedi, S. (2025). Exploring operational barriers in microbial fuel cells: Enhancing energy recovery from wastewater. Electrochemistry Communications, 180, 108051. https://doi.org/https://doi.org/10.1016/j.elecom.2025.108051
- Kim, B., Chang, I. S., Dinsdale, R. M., & Guwy, A. J. (2021). Accurate measurement of internal resistance in microbial fuel cells by improved scanning electrochemical impedance spectroscopy. Electrochimica Acta, 366, 137388. https://doi.org/https://doi.org/10.1016/j.electacta.2020.137388
- Kurniawan, S. B., Roziqin, A., Ahmad, A., Ahmad, M. M., Alfanda, B. D., Pambudi, D. S. A., Said, N. S. M., Abdul, P. M., & Imron, M. F. (2026). Tackling marine pollution in the blue economy: Synergies between wastewater treatment technologies and governmental policies. Marine Pollution Bulletin, 222, 118627. https://doi.org/https://doi.org/10.1016/j.marpolbul.2025.118627
- Li, Y., Zong, Y., Feng, C., & Zhao, K. (2025). The Role of Anode Potential in Electromicrobiology. Microorganisms, 13, 23. https://doi.org/https://doi.org/10.3390/microorganisms13030631
- Lim, S. S., Fontmorin, J.-M., Izadi, P., Wan Daud, W. R., Scott, K., & Yu, E. H. (2020). Impact of applied cell voltage on the performance of a microbial electrolysis cell fully catalysed by microorganisms. International Journal of Hydrogen Energy, 45(4), 2557–2568. https://doi.org/https://doi.org/10.1016/j.ijhydene.2019.11.142
- Lim, S. S., Fontmorin, J.-M., Pham, H. T., Milner, E., Abdul, P. M., Scott, K., Head, I., & Yu, E. H. (2021). Zinc removal and recovery from industrial wastewater with a microbial fuel cell: Experimental investigation and theoretical prediction. Science of The Total Environment, 776, 145934. https://doi.org/https://doi.org/10.1016/j.scitotenv.2021.145934
- Lim, S. S., Yu, E. H., Daud, W. R. W., Kim, B. H., & Scott, K. (2017). Bioanode as a limiting factor to biocathode performance in microbial electrolysis cells. Bioresource Technology, 238, 313–324. https://doi.org/https://doi.org/10.1016/j.biortech.2017.03.127
- López Zavala, M. Á., & Cámara Gutiérrez, I. C. (2023). Effects of External Resistance, New Electrode Material, and Catholyte Type on the Energy Generation and Performance of Dual-Chamber Microbial Fuel Cells. Fermentation, 9(4), 344.
- Mahmoud, R. H., Gomaa, O. M., & Hassan, R. Y. A. (2022). Bio-electrochemical frameworks governing microbial fuel cell performance: technical bottlenecks and proposed solutions [10.1039/D1RA08487A]. RSC Advances, 12(10), 5749–5764. https://doi.org/10.1039/D1RA08487A
- Miller, A., Singh, L., Wang, L., & Liu, H. (2019). Linking internal resistance with design and operation decisions in microbial electrolysis cells. Environment International, 126, 611–618. https://doi.org/https://doi.org/10.1016/j.envint.2019.02.056
- Mohyudin, S., Farooq, R., Jubeen, F., Rasheed, T., Fatima, M., & Sher, F. (2022). Microbial fuel cells a state-of-the-art technology for wastewater treatment and bioelectricity generation. Environmental Research, 204, 112387. https://doi.org/https://doi.org/10.1016/j.envres.2021.112387
- Musa, Y., Wee, B. S., Chung, H. H., Chin, S. F., & Lai, S. H. (2026). Microbial fuel cells as a sustainable nexus of wastewater treatment and bioelectricity generation: Advances, challenges, and future directions in a circular bioeconomy. Renewable and Sustainable Energy Reviews, 232, 116799. https://doi.org/https://doi.org/10.1016/j.rser.2026.116799
- Nawaz, A., Hafeez, A., Abbas, S. Z., Haq, I. u., Mukhtar, H., & Rafatullah, M. (2020). A state of the art review on electron transfer mechanisms, characteristics, applications and recent advancements in microbial fuel cells technology. Green Chemistry Letters and Reviews, 13(4), 365–381. https://doi.org/10.1080/17518253.2020.1854871
- Nemeș, N. S., Negrea, A., Ciopec, M., Negrea, P., Duţeanu, N., & Duda-Seiman, D. M. (2026). Heavy Metal Ion Removal: A Global Review of Wastewater Treatment Technologies. International Journal of Molecular Sciences, 27(4), 1741.
- Rani, M. N. A., Wahab, H. A., & Anuar, H. M. (2025). Toward Climate-Resilient Water Governance: A Legal and Policy Analysis of Malaysia’s Water Sector. International Journal of Environmental Sciences, 11.
- Ravindran, V. H., Nuramidah, Mohd Arish, N. A., & Awang, M. (2025). Evaluation of Anaerobic and Aerobic Treatment for Tds, Cod, and
- Bod Reduction in Meatball Wastewater International Journal of Research and Innovation in Social Science, 9(5). https://doi.org/https://dx.doi.org/10.47772/IJRISS.2025.905000217
- Rosman, N., Yusof, N., Norddin, M. N. A. M., Jaafar, J., Salleh, W. N. W., & Sa’adon, S. (2026). Performance evaluation of POME-based microbial fuel cells: treatment efficiency, power generation, and electron loss pathways. Energy, Ecology and Environment. https://doi.org/10.1007/s40974-026-00412-z
- Rossi, R., Baek, G., Saikaly, P. E., & Logan, B. E. (2021). Continuous Flow Microbial Flow Cell with an Anion Exchange Membrane for Treating Low Conductivity and Poorly Buffered Wastewater. ACS Sustainable Chemistry & Engineering, 9(7), 2946–2954. https://doi.org/10.1021/acssuschemeng.0c09144
- Saghir, M., Ayub, A., Nizami, A.-S., Baqar, M., Kamyab, H., Waqas, M., Rehan, M., & Asam, Z.-u.-Z. (2026). Sustainable valorization of leachate at Lakhodair landfill, Lahore: An integrated life cycle environmental and economic assessment of biogas production. Biomass and Bioenergy, 205, 108540. https://doi.org/https://doi.org/10.1016/j.biombioe.2025.108540
- Solomon, D., Kiflie, Z., & Van, H. S. (2020). Integration of sequencing batch reactor and homo – catalytic advanced oxidation processes for the treatment of textile wastewater. Nanotechnol Environ Eng, 6. https://doi.org/10.1007/s41204-020-0070-6
- Sydow, A., Krieg, T., Ulber, R., & Holtmann, D. (2017). Growth medium and electrolyte—How to combine the different requirements on the reaction solution in bioelectrochemical systems using Cupriavidus necator. Engineering in Life Sciences, 17(7), 781–791. https://doi.org/https://doi.org/10.1002/elsc.201600252
- Vijay, A., Ghosh, P. C., & Mukherji, S. (2023). Power Generation by Halophilic Bacteria and Assessment of the Effect of Salinity on Performance of a Denitrifying Microbial Fuel Cell. Energies, 16(2), 877.
- Wang, A., Klassert, C. J. A., Karutz, R., Smilovic, M., Kahil, T., Burek, P., Zhu, Y., Zozmann, H., Klauer, B., Küblböck, K., Omann, I., Figueroa, A. J., Wada, Y., Naylor, R., & Gorelick, S. M. (2026). Drought-Driven Water Insecurity in an Emerging Indian Megacity: A Coupled Multi-Agent Systems Approach for Policy Evaluation. Earth’s Future, 14(3), e2025EF007976. https://doi.org/https://doi.org/10.1029/2025EF007976
- Wilk, B. K., Szopińska, M., Sobaszek, M., Pierpaoli, M., Błaszczyk, A., Luczkiewicz, A., & Fudala‑Ksiazek, S. (2022). Electrochemical oxidation of landfill leachate using boron‑doped diamond anodes: pollution degradation rate, energy efficiency and toxicity assessment. Environmental Science and Pollution Research, 29, 17.
- Zadeh, P. G., Rezania, S., Fattahi, M., Dang, P., Vasseghian, Y., & Aminabhavi, T. M. (2024). Recent advances in microbial fuel cell technology for energy generation from wastewater sources. Process Safety and Environmental Protection, 189, 425–439. https://doi.org/https://doi.org/10.1016/j.psep.2024.06.077
- Zhang, X., Li, X., Zhaoa, X., & Li, Y. (2019). Factors affecting the efficiency of a bioelectrochemical system: a review. RSC Advances, 9, 14.