Jalili Payam, Ala Amirhosein, Nazari Parham, Jalili Bahram, Ganji Davood Domiri
Department of Mechanical Engineering, North Tehran Branch, Islamic Azad University, Tehran, Iran.
Department of Mechanical Engineering, Babol Noshirvani University of Technology, P.O. Box 484, Babol, Iran.
Heliyon. 2024 Feb 6;10(3):e25439. doi: 10.1016/j.heliyon.2024.e25439. eCollection 2024 Feb 15.
Microbial fuel cells (MFCs) are promising for generating renewable energy from organic matter and efficient wastewater treatment. Ensuring their practical viability requires meticulous optimization and precise design. Among the critical components of MFCs, the membrane separator plays a pivotal role in segregating the anode and cathode chambers. Recent investigations have shed light on the potential benefits of membrane-less MFCs in enhancing power generation. However, it is crucial to recognize that such configurations can adversely impact the electrocatalytic activity of anode microorganisms due to increased substrate and oxygen penetration, leading to decreased coulombic efficiency. Therefore, when selecting a membrane for MFCs, it is essential to consider key factors such as internal resistance, substrate loss, biofouling, and oxygen diffusion. Addressing these considerations carefully allows researchers to advance the performance and efficiency of MFCs, facilitating their practical application in sustainable energy production and wastewater treatment. Accelerated substrate penetration could also lead to cathode clogging and bacterial inactivation, reducing the MFC's efficiency. Overall, the design and optimization of MFCs, including the selection and use of membranes, are vital for their practical application in renewable energy generation and wastewater treatment. Further research is necessary to overcome the challenges of MFCs without a membrane and to develop improved membrane materials for MFCs. This review article aims to compile comprehensive information about all constituents of the microbial fuel cell, providing practical insights for researchers examining various variables in microbial fuel cell research.
微生物燃料电池(MFCs)有望从有机物中产生可再生能源并实现高效废水处理。确保其实际可行性需要精心优化和精确设计。在MFCs的关键组件中,膜分离器在分隔阳极室和阴极室方面起着关键作用。最近的研究揭示了无膜MFCs在提高发电方面的潜在益处。然而,必须认识到,由于底物和氧气渗透增加,这种配置可能会对阳极微生物的电催化活性产生不利影响,导致库仑效率降低。因此,在为MFCs选择膜时,必须考虑内阻、底物损失、生物污染和氧气扩散等关键因素。仔细考虑这些因素可以使研究人员提高MFCs的性能和效率,促进其在可持续能源生产和废水处理中的实际应用。底物渗透加速还可能导致阴极堵塞和细菌失活,降低MFCs的效率。总体而言,MFCs的设计和优化,包括膜的选择和使用,对于其在可再生能源发电和废水处理中的实际应用至关重要。有必要进行进一步研究以克服无膜MFCs的挑战,并开发用于MFCs的改进膜材料。这篇综述文章旨在汇编有关微生物燃料电池所有组成部分的全面信息,为研究微生物燃料电池研究中各种变量的研究人员提供实用见解。