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Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells

In this work, a platinum group metal-free (PGM-free) catalyst based on iron as transitional metal and Nicarbazin (NCB) as low cost organic precursor was synthesized using Sacrificial Support Method (SSM). The catalyst was then incorporated into a large area air-breathing cathode fabricated by pressi...

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Autores principales: Erable, Benjamin, Oliot, Manon, Lacroix, Rémy, Bergel, Alain, Serov, Alexey, Kodali, Mounika, Santoro, Carlo, Atanassov, Plamen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pergamon Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6004532/
https://www.ncbi.nlm.nih.gov/pubmed/29970929
http://dx.doi.org/10.1016/j.electacta.2018.04.190
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author Erable, Benjamin
Oliot, Manon
Lacroix, Rémy
Bergel, Alain
Serov, Alexey
Kodali, Mounika
Santoro, Carlo
Atanassov, Plamen
author_facet Erable, Benjamin
Oliot, Manon
Lacroix, Rémy
Bergel, Alain
Serov, Alexey
Kodali, Mounika
Santoro, Carlo
Atanassov, Plamen
author_sort Erable, Benjamin
collection PubMed
description In this work, a platinum group metal-free (PGM-free) catalyst based on iron as transitional metal and Nicarbazin (NCB) as low cost organic precursor was synthesized using Sacrificial Support Method (SSM). The catalyst was then incorporated into a large area air-breathing cathode fabricated by pressing with a large diameter pellet die. The electrochemical tests in abiotic conditions revealed that after a couple of weeks of successful operation, the electrode experienced drop in performances in reason of electrolyte leakage, which was not an issue with the smaller electrodes. A decrease in the hydrophobic properties over time and a consequent cathode flooding was suspected to be the cause. On the other side, in the present work, for the first time, it was demonstrated the proof of principle and provided initial guidance for manufacturing MFC electrodes with large geometric areas. The tests in MFCs showed a maximum power density of 1.85 W m(−2). The MFCs performances due to the addition of Fe-NCB were much higher compared to the iron-free material. A numerical model using Nernst-Monod and Butler-Volmer equations were used to predict the effect of electrolyte solution conductivity and distance anode-cathode on the overall MFC power output. Considering the existing conditions, the higher overall power predicted was 3.6 mW at 22.2 S m(−1) and at inter-electrode distance of 1 cm.
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spelling pubmed-60045322018-07-01 Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells Erable, Benjamin Oliot, Manon Lacroix, Rémy Bergel, Alain Serov, Alexey Kodali, Mounika Santoro, Carlo Atanassov, Plamen Electrochim Acta Article In this work, a platinum group metal-free (PGM-free) catalyst based on iron as transitional metal and Nicarbazin (NCB) as low cost organic precursor was synthesized using Sacrificial Support Method (SSM). The catalyst was then incorporated into a large area air-breathing cathode fabricated by pressing with a large diameter pellet die. The electrochemical tests in abiotic conditions revealed that after a couple of weeks of successful operation, the electrode experienced drop in performances in reason of electrolyte leakage, which was not an issue with the smaller electrodes. A decrease in the hydrophobic properties over time and a consequent cathode flooding was suspected to be the cause. On the other side, in the present work, for the first time, it was demonstrated the proof of principle and provided initial guidance for manufacturing MFC electrodes with large geometric areas. The tests in MFCs showed a maximum power density of 1.85 W m(−2). The MFCs performances due to the addition of Fe-NCB were much higher compared to the iron-free material. A numerical model using Nernst-Monod and Butler-Volmer equations were used to predict the effect of electrolyte solution conductivity and distance anode-cathode on the overall MFC power output. Considering the existing conditions, the higher overall power predicted was 3.6 mW at 22.2 S m(−1) and at inter-electrode distance of 1 cm. Pergamon Press 2018-07-01 /pmc/articles/PMC6004532/ /pubmed/29970929 http://dx.doi.org/10.1016/j.electacta.2018.04.190 Text en © 2018 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Erable, Benjamin
Oliot, Manon
Lacroix, Rémy
Bergel, Alain
Serov, Alexey
Kodali, Mounika
Santoro, Carlo
Atanassov, Plamen
Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title_full Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title_fullStr Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title_full_unstemmed Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title_short Iron-Nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
title_sort iron-nicarbazin derived platinum group metal-free electrocatalyst in scalable-size air-breathing cathodes for microbial fuel cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6004532/
https://www.ncbi.nlm.nih.gov/pubmed/29970929
http://dx.doi.org/10.1016/j.electacta.2018.04.190
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