4.7 Review

A review of recent advances in electrode materials for emerging bioelectrochemical systems: From biofilm-bearing anodes to specialized cathodes

期刊

CHEMOSPHERE
卷 283, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2021.131138

关键词

Biocathodes; Electroactive bacteria; Microbial fuel cells; Microbial electrolysis cell; Proteobacteria

资金

  1. Direccion General de Asuntos del Personal Academico (DGAPA)
  2. Universidad Nacional Autonoma de Mexico (UNAM), Mexico under PAPIIT [IA102821, IA103521]

向作者/读者索取更多资源

Bioelectrochemical systems (BES), utilizing electroactive bacteria to generate electric energy, offer a sustainable, cost-effective, and carbon-neutral option for energy production and wastewater treatment. Key research areas include improving electrode materials and developing new materials to enhance system performance. This review paper explores innovative electrode materials and modification strategies for emerging BES, discussing the impact of materials on microbial populations and presenting challenges and opportunities for scaling up and industrializing these versatile systems.
Bioelectrochemical systems (BES), mainly microbial fuel cells (MEC) and microbial electrolysis cells (MFC), are unique biosystems that use electroactive bacteria (EAB) to produce electrons in the form of electric energy for different applications. BES have attracted increasing attention as a sustainable, low-cost, and neutral-carbon option for energy production, wastewater treatment, and biosynthesis. Complex interactions between EAB and the electrode materials play a crucial role in system performance and scalability. The electron transfer processes from the EAB to the anode surface or from the cathode surface to the EAB have been the object of numerous investigations in BES, and the development of new materials to maximize energy production and overall performance has been a hot topic in the last years. The present review paper discusses the advances on innovative electrode materials for emerging BES, which include MEC coupled to anaerobic digestion (MEC-AD), Microbial Desalination Cells (MDC), plant-MFC (P-MFC), constructed wetlands-MFC (CW-MFC), and microbial electroFenton (BEF). Detailed insights on innovative electrode modification strategies to improve the electrode transfer kinetics on each emerging BES are provided. The effect of materials on microbial population is also discussed in this review. Furthermore, the challenges and opportunities for materials scientists and engineers working in BES are presented at the end of this work aiming at scaling up and industrialization of such versatile systems.

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