微生物电解电池(MECs)通过废水处理生产氢和有价化学品的生物炼制前景

IF 14.4 Q1 ENERGY & FUELS Biofuel Research Journal-BRJ Pub Date : 2020-03-01 DOI:10.18331/brj2020.7.1.5
Abudukeremu Kadier, Pratiksha Jain, Bin Lai, M. S. Kalil, S. Kondaveeti, K. Alabbosh, I. Abu-Reesh, G. Mohanakrishna
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引用次数: 48

摘要

通过微生物电解池(MEC)降解废弃有机物以经济有效的方式产生氢气(H2)。MEC被称为微生物燃料电池(MFC)的先进概念,但需要少量的补充电能才能在阴极微环境中产生H2。可以整合不同的生物/工艺,从MEC中使用的基质中产生额外的能量,这将使整个过程更加可持续。另一方面,驱动MEC机制所需的能量可以从可再生能源中获取。这些集成可以提高整个过程的效率和经济可行性。本综述批判性地讨论了迄今为止研究的所有与MEC的集成,如MFC、厌氧消化、微生物脱盐细胞、膜生物反应器、太阳能收集系统等。也可以与MEC集成的非生物和环保能源生产过程(如染料增感太阳能电池和热电微转换器),并对其进行了介绍和评述。实现对MEC整合的全面理解有助于开发先进的生物精炼厂,实现更可持续的能源管理。最后,还仔细审查了与扩大这些流程相关的挑战,目的是确定MEC流程中面临的实际障碍。
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Biorefinery perspectives of microbial electrolysis cells (MECs) for hydrogen and valuable chemicals production through wastewater treatment
The degradation of waste organics through microbial electrolysis cell (MEC) generates hydrogen (H2) gas in an economically efficient way. MEC is known as the advanced concept of the microbial fuel cell (MFC) but requires a minor amount of supplementary electrical energy to produce H2 in the cathode microenvironment. Different bio/processes could be integrated to generate additional energy from the substrate used in MECs, which would make the whole process more sustainable. On the other hand, the energy required to drive the MEC mechanism could be harvested from renewable energy sources. These integrations could advance the efficiency and economic feasibility of the whole process. The present review critically discusses all the integrations investigated to date with MECs such as MFCs, anaerobic digestion, microbial desalination cells, membrane bioreactors, solar energy harvesting systems, etc. Energy generating non-biological and eco-friendly processes (such as dye-sensitized solar cells and thermoelectric microconverters) which could also be integrated with MECs, are also presented and reviewed. Achieving a comprehensive understanding about MEC integration could help with developing advanced biorefineries towards more sustainable energy management. Finally, the challenges related to the scaling up of these processes are also scrutinized with the aim to identify the practical hurdles faced in the MEC processes.
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来源期刊
CiteScore
22.10
自引率
1.50%
发文量
15
审稿时长
8 weeks
期刊介绍: Biofuel Research Journal (BRJ) is a leading, peer-reviewed academic journal that focuses on high-quality research in the field of biofuels, bioproducts, and biomass-derived materials and technologies. The journal's primary goal is to contribute to the advancement of knowledge and understanding in the areas of sustainable energy solutions, environmental protection, and the circular economy. BRJ accepts various types of articles, including original research papers, review papers, case studies, short communications, and hypotheses. The specific areas covered by the journal include Biofuels and Bioproducts, Biomass Valorization, Biomass-Derived Materials for Energy and Storage Systems, Techno-Economic and Environmental Assessments, Climate Change and Sustainability, and Biofuels and Bioproducts in Circular Economy, among others. BRJ actively encourages interdisciplinary collaborations among researchers, engineers, scientists, policymakers, and industry experts to facilitate the adoption of sustainable energy solutions and promote a greener future. The journal maintains rigorous standards of peer review and editorial integrity to ensure that only impactful and high-quality research is published. Currently, BRJ is indexed by several prominent databases such as Web of Science, CAS Databases, Directory of Open Access Journals, Scimago Journal Rank, Scopus, Google Scholar, Elektronische Zeitschriftenbibliothek EZB, et al.
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