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电发酵和微生物燃料电池中的操作效率与可持续生物处理

Operational efficiencies and sustainable bioprocessing in electro-fermentation and microbial fuel cells.

作者信息

Kushwaha Bhanu, Shukla Ravi, Sharma Rakesh Kumar

机构信息

Department of Life Sciences, Chhatrapati Shahu Ji Maharaj University, Kanpur, 208024, India.

GSV Central Library, Chhatrapati Shahu Ji Maharaj University, Kanpur, 208024, India.

出版信息

Bioprocess Biosyst Eng. 2025 Sep 9. doi: 10.1007/s00449-025-03228-z.

Abstract

The development of innovative bioprocessing technologies has resulted from the growing global need for sustainable forms of energy and environmentally friendly waste treatment. In this review, we focus on the combined electro-fermentation and microbial fuel cells, as they form a hybrid system that simultaneously addresses wastewater treatment, bioenergy production, and bioplastics. Even though microbial fuel cells produce electricity out of the organic waste by the use of electroactive microorganisms, electro-fermentation improves the microbial pathways through the external electrochemical management. The novelty of the review is that it compares the two technologies in detail and identifies the synergistic potential of the technologies as well as assesses the efficiencies of their operations, scalability, and impact on the environment. The research utilizing Scopus and PubMed directories was done by means of a systematic literature review that included 147 peer-reviewed experimentation and technology-oriented studies published during the period of 2012-2024. The main results lead to the conclusion that integrated systems imply significant increase in power densities (up to 2000 mW/m), the enhancement of electron transfer efficiency (increased by 30-40%), large-scale production of useful products such as methane, hydrogen and organic acids. In spite of this promise, there are still difficulties regarding microbial stability, material costs, and energy balance. The review identifies the existing gaps and future opportunities, which include the development of novel electrode materials, the employment of better reactor designs and designer microbial consortia. The combination of such systems may become an interesting strategy of the next generation of biorefineries and have a good prospect to become a part of the circular economy and climate as a whole.

摘要

创新生物处理技术的发展源于全球对可持续能源形式和环境友好型废物处理的需求不断增长。在本综述中,我们重点关注联合电发酵和微生物燃料电池,因为它们形成了一个混合系统,可同时解决废水处理、生物能源生产和生物塑料问题。尽管微生物燃料电池通过使用电活性微生物从有机废物中产生电能,但电发酵通过外部电化学管理改善了微生物途径。本综述的新颖之处在于详细比较了这两种技术,确定了它们的协同潜力,并评估了其运行效率、可扩展性和对环境的影响。利用Scopus和PubMed数据库进行的研究采用了系统的文献综述方法,涵盖了2012年至2024年期间发表的147篇同行评审的实验性和技术导向性研究。主要结果得出结论,集成系统意味着功率密度显著提高(高达2000 mW/m)、电子转移效率增强(提高30-40%)、大规模生产甲烷、氢气和有机酸等有用产品。尽管有这些前景,但在微生物稳定性、材料成本和能量平衡方面仍存在困难。该综述确定了现有差距和未来机遇,其中包括新型电极材料的开发、更好的反应器设计的应用以及设计微生物群落。这种系统的组合可能成为下一代生物精炼厂的一个有趣策略,并有很好的前景成为整个循环经济和气候的一部分。

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