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Multi-anode enhanced the bioelectricity generation in air-cathode microbial fuel cells towards energy self-sustaining wastewater treatment.

Authors :
Xie, Li
Tanaka, Fumichika
Yagi, Toshiyuki
Hashimoto, Hideaki
Ikeru, Kyo
Igarashi, Takashi
Kobayashi, Hiroaki
Sakoda, Mitsuhiro
Yoshida, Naoko
Source :
Environmental Research. Feb2024, Vol. 243, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Microbial fuel cells (MFCs) hold considerable promise for harnessing the substantial energy resources present in wastewater. However, their practical application in wastewater treatment is limited by inadequate removal of organic matter and inefficient power recovery. Previous studies have investigated aeration as a method to enhance the removal of organic matter, but this method is energy-intensive. To address this issue, this study proposed using MFC-recovered bioelectricity for aeration, thereby mitigating the associated expenses. An air-cathode MFC with multi-anode was constructed and optimized to maximize electricity supply for aeration. Carbon-felt anodes were chosen as the most effective anode configuration, due to the high abundance of electroactive bacteria and genes observed in the biofilm generated on their surface. By incorporating six carbon felt anodes, the MFC achieved a 1.7 and 1.1 fold enhancement in the maximum power and current density, respectively. The optimized MFC unit achieved a stable current density of 0.32 A/m2 and achieved COD removal of 60% in the long-term operation of 140 days in a 50 L reactor. In a reactor scaled up to 1600 L, 72 MFCs successfully powered a mini air pump work for 10 s after an 81-s charging period. The intermittent aeration resulted in partial increases in DO concentrations to 0.03–3.5 mg/L, which is expected to promote the removal of nitrogen compounds by the nitrification-anammox process. These groundbreaking results lay the foundation for self-sustaining wastewater treatment technologies. • Developed and optimized multi-anode shared air-cathode MFC for wastewater treatment. • Carbon felt bunch anode increased bioelectricity output for more active EET of EAB. • Optimized MFC achieved a stable current density of 0.32 A/m2 and 60% COD removal. • Recovered bioelectricity derived intermittent aeration in a 1600 L reactor. • Organic compound removal is expected to improve with the increase of DO. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00139351
Volume :
243
Database :
Academic Search Index
Journal :
Environmental Research
Publication Type :
Academic Journal
Accession number :
175242578
Full Text :
https://doi.org/10.1016/j.envres.2023.117744