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Microbial fuel cell hybrid systems for wastewater treatment and bioenergy production: Synergistic effects, mechanisms and challenges

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  • Zhang, Ying
  • Liu, Mengmeng
  • Zhou, Minghua
  • Yang, Huijia
  • Liang, Liang
  • Gu, Tingyue

Abstract

The microbial fuel cell (MFC) technology relies on electroactive bacteria to degrade organic molecules for bioelectricity production. MFC is a potentially useful approach for wastewater treatment with concomitant energy production. The main advantages of MFC for treating wastewater include energy saving, sludge volume reduction and bioenergy generation. In the past two decades, tremendous advances have been made in improving MFC performances. However, MFCs still face significant hurdles for practical deployments due to their low power densities and high costs. Further improvements are becoming harder to achieve for standalone MFC devices. In recent years, MFCs have been integrated with physical, chemical and biological processes for wastewater treatment, bioelectricity production, chemical production and desalination. The hybrid systems are more promising compared with standalone MFCs. This comprehensive and state-of-the-art review discusses different systems coupled with MFCs using different working principles, reactor designs, operating parameters and their effects on system performances. These systems include bioelectro-Fenton-MFC, microbial desalination cell, MFC-electrosorption cell, microbial solar cell, microbial reverse-electrodialysis cell, plant-MFC and constructed wetland-MFC. Synergistic effects and mechanisms of process coupling as well as the challenges for practical applications of each hybrid system are assessed. Although MFC-hybrid systems are more promising than standalone MFCs, much more research is needed to overcome significant hurdles for practical deployment.

Suggested Citation

  • Zhang, Ying & Liu, Mengmeng & Zhou, Minghua & Yang, Huijia & Liang, Liang & Gu, Tingyue, 2019. "Microbial fuel cell hybrid systems for wastewater treatment and bioenergy production: Synergistic effects, mechanisms and challenges," Renewable and Sustainable Energy Reviews, Elsevier, vol. 103(C), pages 13-29.
  • Handle: RePEc:eee:rensus:v:103:y:2019:i:c:p:13-29
    DOI: 10.1016/j.rser.2018.12.027
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    1. Choudhury, Payel & Uday, Uma Shankar Prasad & Mahata, Nibedita & Nath Tiwari, Onkar & Narayan Ray, Rup & Kanti Bandyopadhyay, Tarun & Bhunia, Biswanath, 2017. "Performance improvement of microbial fuel cells for waste water treatment along with value addition: A review on past achievements and recent perspectives," Renewable and Sustainable Energy Reviews, Elsevier, vol. 79(C), pages 372-389.
    2. Kokabian, Bahareh & Ghimire, Umesh & Gude, Veera Gnaneswar, 2018. "Water deionization with renewable energy production in microalgae - microbial desalination process," Renewable Energy, Elsevier, vol. 122(C), pages 354-361.
    3. Nitisoravut, Rachnarin & Regmi, Roshan, 2017. "Plant microbial fuel cells: A promising biosystems engineering," Renewable and Sustainable Energy Reviews, Elsevier, vol. 76(C), pages 81-89.
    4. Jiang, Yong & Yang, Xufei & Liang, Peng & Liu, Panpan & Huang, Xia, 2018. "Microbial fuel cell sensors for water quality early warning systems: Fundamentals, signal resolution, optimization and future challenges," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P1), pages 292-305.
    5. Chen, Man & Zhang, Fang & Zhang, Yan & Zeng, Raymond J., 2013. "Alkali production from bipolar membrane electrodialysis powered by microbial fuel cell and application for biogas upgrading," Applied Energy, Elsevier, vol. 103(C), pages 428-434.
    6. Wang, Yong-Peng & Liu, Xian-Wei & Li, Wen-Wei & Li, Feng & Wang, Yun-Kun & Sheng, Guo-Ping & Zeng, Raymond J. & Yu, Han-Qing, 2012. "A microbial fuel cell–membrane bioreactor integrated system for cost-effective wastewater treatment," Applied Energy, Elsevier, vol. 98(C), pages 230-235.
    7. Anhuai Lu & Yan Li & Song Jin & Xin Wang & Xiao-Lei Wu & Cuiping Zeng & Yan Li & Hongrui Ding & Ruixia Hao & Ming Lv & Changqiu Wang & Yueqin Tang & Hailiang Dong, 2012. "Growth of non-phototrophic microorganisms using solar energy through mineral photocatalysis," Nature Communications, Nature, vol. 3(1), pages 1-8, January.
    8. Hindatu, Y. & Annuar, M.S.M. & Gumel, A.M., 2017. "Mini-review: Anode modification for improved performance of microbial fuel cell," Renewable and Sustainable Energy Reviews, Elsevier, vol. 73(C), pages 236-248.
    9. Xu, Lei & Wang, Bodi & Liu, Xiuhua & Yu, Wenzheng & Zhao, Yaqian, 2018. "Maximizing the energy harvest from a microbial fuel cell embedded in a constructed wetland," Applied Energy, Elsevier, vol. 214(C), pages 83-91.
    10. Escapa, A. & Mateos, R. & Martínez, E.J. & Blanes, J., 2016. "Microbial electrolysis cells: An emerging technology for wastewater treatment and energy recovery. From laboratory to pilot plant and beyond," Renewable and Sustainable Energy Reviews, Elsevier, vol. 55(C), pages 942-956.
    11. Saba, Beenish & Christy, Ann D. & Yu, Zhongtang & Co, Anne C., 2017. "Sustainable power generation from bacterio-algal microbial fuel cells (MFCs): An overview," Renewable and Sustainable Energy Reviews, Elsevier, vol. 73(C), pages 75-84.
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