Influence of carbon-based cathodes on biofilm composition and electrochemical performance in soil microbial fuel cells

微生物燃料电池 生物膜 电化学 作文(语言) 阳极 阴极 化学工程 碳纤维 材料科学 环境科学 化学 环境化学 电极 复合材料 生物 细菌 艺术 文学类 遗传学 工程类 复合数 物理化学
作者
Arpita Nandy,Daniel Farkas,Belén Pepió,Sandra Martínez-Crespiera,Eduard Borràs,Claudio Avignone–Rossa,Mirella Di Lorenzo
出处
期刊:Environmental science & ecotechnology [Elsevier]
卷期号:16: 100276-100276 被引量:16
标识
DOI:10.1016/j.ese.2023.100276
摘要

Increasing energy demands and environmental pollution concerns press for sustainable and environmentally friendly technologies. Soil microbial fuel cell (SMFC) technology has great potential for carbon-neutral bioenergy generation and self-powered electrochemical bioremediation. In this study, an in-depth assessment on the effect of several carbon-based cathode materials on the electrochemical performance of SMFCs is provided for the first time. An innovative carbon nanofibers electrode doped with Fe (CNFFe) is used as cathode material in membrane-less SMFCs, and the performance of the resulting device is compared with SMFCs implementing either Pt-doped carbon cloth (PtC), carbon cloth, or graphite felt (GF) as the cathode. Electrochemical analyses are integrated with microbial analyses to assess the impact on both electrogenesis and microbial composition of the anodic and cathodic biofilm. The results show that CNFFe and PtC generate very stable performances, with a peak power density (with respect to the cathode geometric area) of 25.5 and 30.4 mW m−2, respectively. The best electrochemical performance was obtained with GF, with a peak power density of 87.3 mW m−2. Taxonomic profiling of the microbial communities revealed differences between anodic and cathodic communities. The anodes were predominantly enriched with Geobacter and Pseudomonas species, while cathodic communities were dominated by hydrogen-producing and hydrogenotrophic bacteria, indicating H2 cycling as a possible electron transfer mechanism. The presence of nitrate-reducing bacteria, combined with the results of cyclic voltammograms, suggests microbial nitrate reduction occurred on GF cathodes. The results of this study can contribute to the development of effective SMFC design strategies for field implementation.
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