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Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery

The membrane is a crucial component of Zn slurry–air flow battery since it provides ionic conductivity between the electrodes while avoiding the mixing of the two compartments. Herein, six commercial membranes (Cellophane™ 350PØØ, Zirfon(®), Fumatech(®) PBI, Celgard(®) 3501, 3401 and 5550) were firs...

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Autores principales: Tsehaye, Misgina Tilahun, Teklay Gebreslassie, Getachew, Heon Choi, Nak, Milian, Diego, Martin, Vincent, Fischer, Peter, Tübke, Jens, El Kissi, Nadia, Donten, Mateusz L., Alloin, Fannie, Iojoiu, Cristina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8272061/
https://www.ncbi.nlm.nih.gov/pubmed/34279401
http://dx.doi.org/10.3390/molecules26134062
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author Tsehaye, Misgina Tilahun
Teklay Gebreslassie, Getachew
Heon Choi, Nak
Milian, Diego
Martin, Vincent
Fischer, Peter
Tübke, Jens
El Kissi, Nadia
Donten, Mateusz L.
Alloin, Fannie
Iojoiu, Cristina
author_facet Tsehaye, Misgina Tilahun
Teklay Gebreslassie, Getachew
Heon Choi, Nak
Milian, Diego
Martin, Vincent
Fischer, Peter
Tübke, Jens
El Kissi, Nadia
Donten, Mateusz L.
Alloin, Fannie
Iojoiu, Cristina
author_sort Tsehaye, Misgina Tilahun
collection PubMed
description The membrane is a crucial component of Zn slurry–air flow battery since it provides ionic conductivity between the electrodes while avoiding the mixing of the two compartments. Herein, six commercial membranes (Cellophane™ 350PØØ, Zirfon(®), Fumatech(®) PBI, Celgard(®) 3501, 3401 and 5550) were first characterized in terms of electrolyte uptake, ion conductivity and zincate ion crossover, and tested in Zn slurry–air flow battery. The peak power density of the battery employing the membranes was found to depend on the in-situ cell resistance. Among them, the cell using Celgard(®) 3501 membrane, with in-situ area resistance of 2 Ω cm(2) at room temperature displayed the highest peak power density (90 mW cm(−2)). However, due to the porous nature of most of these membranes, a significant crossover of zincate ions was observed. To address this issue, an ion-selective ionomer containing modified poly(phenylene oxide) (PPO) and N-spirocyclic quaternary ammonium monomer was coated on a Celgard(®) 3501 membrane and crosslinked via UV irradiation (PPO-3.45 + 3501). Moreover, commercial FAA-3 solutions (FAA, Fumatech) were coated for comparison purpose. The successful impregnation of the membrane with the anion-exchange polymers was confirmed by SEM, FTIR and Hg porosimetry. The PPO-3.45 + 3501 membrane exhibited 18 times lower zincate ions crossover compared to that of the pristine membrane (5.2 × 10(−13) vs. 9.2 × 10(−12) m(2) s(−1)). With low zincate ions crossover and a peak power density of 66 mW cm(−2), the prepared membrane is a suitable candidate for rechargeable Zn slurry–air flow batteries.
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spelling pubmed-82720612021-07-11 Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery Tsehaye, Misgina Tilahun Teklay Gebreslassie, Getachew Heon Choi, Nak Milian, Diego Martin, Vincent Fischer, Peter Tübke, Jens El Kissi, Nadia Donten, Mateusz L. Alloin, Fannie Iojoiu, Cristina Molecules Article The membrane is a crucial component of Zn slurry–air flow battery since it provides ionic conductivity between the electrodes while avoiding the mixing of the two compartments. Herein, six commercial membranes (Cellophane™ 350PØØ, Zirfon(®), Fumatech(®) PBI, Celgard(®) 3501, 3401 and 5550) were first characterized in terms of electrolyte uptake, ion conductivity and zincate ion crossover, and tested in Zn slurry–air flow battery. The peak power density of the battery employing the membranes was found to depend on the in-situ cell resistance. Among them, the cell using Celgard(®) 3501 membrane, with in-situ area resistance of 2 Ω cm(2) at room temperature displayed the highest peak power density (90 mW cm(−2)). However, due to the porous nature of most of these membranes, a significant crossover of zincate ions was observed. To address this issue, an ion-selective ionomer containing modified poly(phenylene oxide) (PPO) and N-spirocyclic quaternary ammonium monomer was coated on a Celgard(®) 3501 membrane and crosslinked via UV irradiation (PPO-3.45 + 3501). Moreover, commercial FAA-3 solutions (FAA, Fumatech) were coated for comparison purpose. The successful impregnation of the membrane with the anion-exchange polymers was confirmed by SEM, FTIR and Hg porosimetry. The PPO-3.45 + 3501 membrane exhibited 18 times lower zincate ions crossover compared to that of the pristine membrane (5.2 × 10(−13) vs. 9.2 × 10(−12) m(2) s(−1)). With low zincate ions crossover and a peak power density of 66 mW cm(−2), the prepared membrane is a suitable candidate for rechargeable Zn slurry–air flow batteries. MDPI 2021-07-02 /pmc/articles/PMC8272061/ /pubmed/34279401 http://dx.doi.org/10.3390/molecules26134062 Text en © 2021 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
Tsehaye, Misgina Tilahun
Teklay Gebreslassie, Getachew
Heon Choi, Nak
Milian, Diego
Martin, Vincent
Fischer, Peter
Tübke, Jens
El Kissi, Nadia
Donten, Mateusz L.
Alloin, Fannie
Iojoiu, Cristina
Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title_full Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title_fullStr Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title_full_unstemmed Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title_short Pristine and Modified Porous Membranes for Zinc Slurry–Air Flow Battery
title_sort pristine and modified porous membranes for zinc slurry–air flow battery
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8272061/
https://www.ncbi.nlm.nih.gov/pubmed/34279401
http://dx.doi.org/10.3390/molecules26134062
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