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A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation

Microbial fuel cells are a promising technology for future wastewater treatment, as it allows cleaning and power generation simultaneously. The bottleneck of microbial fuel cells is often its cathodes because they determine the power output. Gas diffusion electrodes might overcome this bottleneck du...

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Autores principales: Haupt, Dennis R., Landwehr, Laura, Schumann, René, Hahn, Lena, Issa, Mohammad, Coskun, Can, Kunz, Ulrich, Sievers, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9784785/
https://www.ncbi.nlm.nih.gov/pubmed/36557674
http://dx.doi.org/10.3390/microorganisms10122421
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author Haupt, Dennis R.
Landwehr, Laura
Schumann, René
Hahn, Lena
Issa, Mohammad
Coskun, Can
Kunz, Ulrich
Sievers, Michael
author_facet Haupt, Dennis R.
Landwehr, Laura
Schumann, René
Hahn, Lena
Issa, Mohammad
Coskun, Can
Kunz, Ulrich
Sievers, Michael
author_sort Haupt, Dennis R.
collection PubMed
description Microbial fuel cells are a promising technology for future wastewater treatment, as it allows cleaning and power generation simultaneously. The bottleneck of microbial fuel cells is often its cathodes because they determine the power output. Gas diffusion electrodes might overcome this bottleneck due to their low production costs and high oxygen reduction rates. However, biofilm formation on the gas diffusion electrodes reduces their performance over time. In this work, a new reactor design of the microbial fuel cell using rotating gas diffusion electrodes is presented. The biofilm growth on the electrode during operation was observed and its effect on the performance of the microbial fuel cell was examined. In addition, different antifouling strategies were investigated over a period of 80 days. It was found that already after 7 days of operation a complete biofilm had grown on an untreated gas diffusion electrode. However, this does not seem to affect the performance of the cells in the beginning. Differences in the performance of the reactors with and without an antifouling strategy only become apparent from day 15 onwards. The use of UV radiation and antibacterial membranes leads to the best results with maximum power densities of approx. 200 mW m(−2) while the untreated microbial fuel cell only achieves a maximum power density of approx. 20 mW m(−2).
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spelling pubmed-97847852022-12-24 A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation Haupt, Dennis R. Landwehr, Laura Schumann, René Hahn, Lena Issa, Mohammad Coskun, Can Kunz, Ulrich Sievers, Michael Microorganisms Article Microbial fuel cells are a promising technology for future wastewater treatment, as it allows cleaning and power generation simultaneously. The bottleneck of microbial fuel cells is often its cathodes because they determine the power output. Gas diffusion electrodes might overcome this bottleneck due to their low production costs and high oxygen reduction rates. However, biofilm formation on the gas diffusion electrodes reduces their performance over time. In this work, a new reactor design of the microbial fuel cell using rotating gas diffusion electrodes is presented. The biofilm growth on the electrode during operation was observed and its effect on the performance of the microbial fuel cell was examined. In addition, different antifouling strategies were investigated over a period of 80 days. It was found that already after 7 days of operation a complete biofilm had grown on an untreated gas diffusion electrode. However, this does not seem to affect the performance of the cells in the beginning. Differences in the performance of the reactors with and without an antifouling strategy only become apparent from day 15 onwards. The use of UV radiation and antibacterial membranes leads to the best results with maximum power densities of approx. 200 mW m(−2) while the untreated microbial fuel cell only achieves a maximum power density of approx. 20 mW m(−2). MDPI 2022-12-07 /pmc/articles/PMC9784785/ /pubmed/36557674 http://dx.doi.org/10.3390/microorganisms10122421 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Haupt, Dennis R.
Landwehr, Laura
Schumann, René
Hahn, Lena
Issa, Mohammad
Coskun, Can
Kunz, Ulrich
Sievers, Michael
A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title_full A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title_fullStr A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title_full_unstemmed A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title_short A New Reactor Concept for Single-Chamber Microbial Fuel Cells and Possible Anti-Fouling Strategies for Long-Term Operation
title_sort new reactor concept for single-chamber microbial fuel cells and possible anti-fouling strategies for long-term operation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9784785/
https://www.ncbi.nlm.nih.gov/pubmed/36557674
http://dx.doi.org/10.3390/microorganisms10122421
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