Research Institute on Bioengineering, Membrane Technology and Energetics, University of Pannonia, Egyetem ut 10, 8200 Veszprém, Hungary.
Faculty of Environment and Labour Safety, Ton Duc Thang University, Ho Chi Minh City, Viet Nam.
Bioresour Technol. 2018 Mar;251:381-389. doi: 10.1016/j.biortech.2017.12.064. Epub 2017 Dec 21.
Microbial electrohydrogenesis cells (MECs) are devices that have attracted significant attention from the scientific community to generate hydrogen gas electrochemically with the aid of exoelectrogen microorganisms. It has been demonstrated that MECs are capable to deal with the residual organic materials present in effluents generated along with dark fermentative hydrogen bioproduction (DF). Consequently, MECs stand as attractive post-treatment units to enhance the global H yield as a part of a two-stage, integrated application (DF-MEC). In this review article, it is aimed (i) to assess results communicated in the relevant literature on cascade DF-MEC systems, (ii) describe the characteristics of each steps involved and (iii) discuss the experiences as well as the lessons in order to facilitate knowledge transfer and help the interested readers with the construction of more efficient coupled set-ups, leading eventually to the improvement of overall biohydrogen evolution performances.
微生物电解池 (MEC) 是一种设备,它吸引了科学界的极大关注,能够借助异化微生物电化学产生氢气。已经证明,MEC 能够处理伴随暗发酵制氢生物生产 (DF) 而产生的废水中存在的残留有机物质。因此,MEC 作为一种有吸引力的后处理单元,可以提高整体 H 产量,作为两步集成应用 (DF-MEC) 的一部分。在这篇综述文章中,旨在 (i) 评估相关文献中关于级联 DF-MEC 系统的结果,(ii) 描述所涉及的各个步骤的特点,以及 (iii) 讨论经验和教训,以便促进知识转移,并帮助有兴趣的读者构建更有效的耦合装置,最终提高整体生物制氢性能。