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A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source

The hydrogen-bromate flow battery represents one of the promising variants for hybrid power sources. Its membrane-electrode assembly (MEA) combines a hydrogen gas diffusion anode and a porous flow-through cathode where bromate reduction takes place from its acidized aqueous solution: BrO(3)(−) + 6 H...

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Autores principales: Kartashova, Natalia V., Konev, Dmitry V., Loktionov, Pavel A., Glazkov, Artem T., Goncharova, Olga A., Petrov, Mikhail M., Antipov, Anatoly E., Vorotyntsev, Mikhail A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9782483/
https://www.ncbi.nlm.nih.gov/pubmed/36557135
http://dx.doi.org/10.3390/membranes12121228
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author Kartashova, Natalia V.
Konev, Dmitry V.
Loktionov, Pavel A.
Glazkov, Artem T.
Goncharova, Olga A.
Petrov, Mikhail M.
Antipov, Anatoly E.
Vorotyntsev, Mikhail A.
author_facet Kartashova, Natalia V.
Konev, Dmitry V.
Loktionov, Pavel A.
Glazkov, Artem T.
Goncharova, Olga A.
Petrov, Mikhail M.
Antipov, Anatoly E.
Vorotyntsev, Mikhail A.
author_sort Kartashova, Natalia V.
collection PubMed
description The hydrogen-bromate flow battery represents one of the promising variants for hybrid power sources. Its membrane-electrode assembly (MEA) combines a hydrogen gas diffusion anode and a porous flow-through cathode where bromate reduction takes place from its acidized aqueous solution: BrO(3)(−) + 6 H(+) + 6 e(−) = Br(−) + 3 H(2)O (*). The process of electric current generation occurs on the basis of the overall reaction: 3 H(2) + BrO(3)(−) = Br(−) + 3 H(2)O (**), which has been studied in previous publications. Until this work, it has been unknown whether this device is able to function as a rechargeable power source. This means that the bromide anion, Br(−), should be electrooxidized into the bromate anion, BrO(3)(−), in the course of the charging stage inside the same cell under strongly acidic conditions, while until now this process has only been carried out in neutral or alkaline solutions with specially designed anode materials. In this study, we have demonstrated that processes (*) and (**) can be performed in a cyclic manner, i.e., as a series of charge and discharge stages with the use of MEA: H(2), Freidenberg H23C8 Pt-C/GP-IEM 103/Sigracet 39AA, HBr + H(2)SO(4); square cross-section of 4 cm(2) surface area, under an alternating galvanostatic mode at a current density of 75 mA/cm(2). The coulombic, voltaic and energy efficiencies of the flow battery under a cyclic regime, as well as the absorption spectra of the catholyte, were measured during its operation. The total amount of Br-containing compounds penetrating through the membrane into the anode space was also determined.
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spelling pubmed-97824832022-12-24 A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source Kartashova, Natalia V. Konev, Dmitry V. Loktionov, Pavel A. Glazkov, Artem T. Goncharova, Olga A. Petrov, Mikhail M. Antipov, Anatoly E. Vorotyntsev, Mikhail A. Membranes (Basel) Article The hydrogen-bromate flow battery represents one of the promising variants for hybrid power sources. Its membrane-electrode assembly (MEA) combines a hydrogen gas diffusion anode and a porous flow-through cathode where bromate reduction takes place from its acidized aqueous solution: BrO(3)(−) + 6 H(+) + 6 e(−) = Br(−) + 3 H(2)O (*). The process of electric current generation occurs on the basis of the overall reaction: 3 H(2) + BrO(3)(−) = Br(−) + 3 H(2)O (**), which has been studied in previous publications. Until this work, it has been unknown whether this device is able to function as a rechargeable power source. This means that the bromide anion, Br(−), should be electrooxidized into the bromate anion, BrO(3)(−), in the course of the charging stage inside the same cell under strongly acidic conditions, while until now this process has only been carried out in neutral or alkaline solutions with specially designed anode materials. In this study, we have demonstrated that processes (*) and (**) can be performed in a cyclic manner, i.e., as a series of charge and discharge stages with the use of MEA: H(2), Freidenberg H23C8 Pt-C/GP-IEM 103/Sigracet 39AA, HBr + H(2)SO(4); square cross-section of 4 cm(2) surface area, under an alternating galvanostatic mode at a current density of 75 mA/cm(2). The coulombic, voltaic and energy efficiencies of the flow battery under a cyclic regime, as well as the absorption spectra of the catholyte, were measured during its operation. The total amount of Br-containing compounds penetrating through the membrane into the anode space was also determined. MDPI 2022-12-05 /pmc/articles/PMC9782483/ /pubmed/36557135 http://dx.doi.org/10.3390/membranes12121228 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
Kartashova, Natalia V.
Konev, Dmitry V.
Loktionov, Pavel A.
Glazkov, Artem T.
Goncharova, Olga A.
Petrov, Mikhail M.
Antipov, Anatoly E.
Vorotyntsev, Mikhail A.
A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title_full A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title_fullStr A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title_full_unstemmed A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title_short A Hydrogen-Bromate Flow Battery as a Rechargeable Chemical Power Source
title_sort hydrogen-bromate flow battery as a rechargeable chemical power source
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9782483/
https://www.ncbi.nlm.nih.gov/pubmed/36557135
http://dx.doi.org/10.3390/membranes12121228
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