Department of Mechanical Engineering, National Taiwan University of Science and Technology, No. 43, Section 4, Keelung Road, Taipei, Taiwan.
Department of Mechanical and Electromechanical Engineering, National I Lan University, I Lan, Taiwan; Department of Chemical Engineering, Indian Institute of Technology Guwahati, Assam, India.
Chemosphere. 2022 Jan;287(Pt 3):132248. doi: 10.1016/j.chemosphere.2021.132248. Epub 2021 Sep 13.
The conflict between climate change and growing global energy demand is an immense sustainability challenge that requires noteworthy scientific and technological developments. Recently the importance of microbial fuel cell (MFC) on this issue has seen profound investigation due to its inherent ability of simultaneous wastewater treatment, and power production. However, the challenges of economy-related manufacturing and operation costs should be lowered to achieve positive field-scale demonstration. Also, a variety of different field deployments will lead to improvisation. Hence, this review article discusses the possibility of integration of MFC technology with various technologies of recent times leading to advanced sustainable MFC technology. Technological innovation in the field of nanotechnology, genetic engineering, additive manufacturing, artificial intelligence, adaptive control, and few other hybrid systems integrated with MFCs is discussed. This comprehensive and state-of-the-art study elaborates hybrid MFCs integrated with various technology and its working principles, modified electrode material, complex and easy to manufacture reactor designs, and the effects of various operating parameters on system performances. Although integrated systems are promising, much future research work is needed to overcome the challenges and commercialize hybrid MFC technology.
气候变化和不断增长的全球能源需求之间的冲突是一个巨大的可持续性挑战,需要引人注目的科学和技术发展。由于微生物燃料电池(MFC)具有同时处理废水和发电的固有能力,因此最近在这个问题上的重要性得到了深入的研究。然而,为了实现积极的现场示范,应该降低与经济相关的制造和运营成本方面的挑战。此外,各种不同的现场部署将导致即兴创作。因此,本文综述讨论了将 MFC 技术与最近的各种技术相结合,从而实现先进的可持续 MFC 技术的可能性。本文讨论了纳米技术、基因工程、增材制造、人工智能、自适应控制等领域的技术创新,以及与 MFC 集成的其他一些混合系统。这项全面的最新研究详细阐述了与各种技术集成的混合 MFC 及其工作原理、改性电极材料、复杂且易于制造的反应堆设计,以及各种操作参数对系统性能的影响。尽管集成系统很有前途,但仍需要进行大量的未来研究工作来克服挑战并使混合 MFC 技术商业化。