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Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer

The intermittent and volatile nature of renewable energy sources threatens the stable operation of power grids, necessitating dynamically operated energy storage. Power-to-gas technology is a promising method for managing electricity variations on a large gigawatt (GW) scale. The electrolyzer is a k...

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Autores principales: Lee, Jung Won, Lee, ChangSoo, Lee, Jae Hun, Kim, Sang-Kyung, Cho, Hyun-Seok, Kim, MinJoong, Cho, Won Chul, Joo, Jong Hoon, Kim, Chang-Hee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7759930/
https://www.ncbi.nlm.nih.gov/pubmed/33261186
http://dx.doi.org/10.3390/polym12122821
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author Lee, Jung Won
Lee, ChangSoo
Lee, Jae Hun
Kim, Sang-Kyung
Cho, Hyun-Seok
Kim, MinJoong
Cho, Won Chul
Joo, Jong Hoon
Kim, Chang-Hee
author_facet Lee, Jung Won
Lee, ChangSoo
Lee, Jae Hun
Kim, Sang-Kyung
Cho, Hyun-Seok
Kim, MinJoong
Cho, Won Chul
Joo, Jong Hoon
Kim, Chang-Hee
author_sort Lee, Jung Won
collection PubMed
description The intermittent and volatile nature of renewable energy sources threatens the stable operation of power grids, necessitating dynamically operated energy storage. Power-to-gas technology is a promising method for managing electricity variations on a large gigawatt (GW) scale. The electrolyzer is a key component that can convert excess electricity into hydrogen with high flexibility. Recently, organic/inorganic composite separators have been widely used as diaphragm membranes; however, they are prone to increase ohmic resistance and gas crossover, which inhibit electrolyzer efficiency. Here, we show that the ceria nanoparticle and polysulfone composite separator exhibits a low area resistance of 0.16 Ω cm(2) and a hydrogen permeability of 1.2 × 10(–12) mol cm(–1) s(–1) bar(–1) in 30 wt% potassium hydroxide (KOH) electrolyte, which outperformed the commercial separator, the Zirfon PERL separator. The cell using a 100 nm ceria nanoparticle/polysulfone separator and advanced catalysts has a remarkable capability of 1.84 V at 800 mA cm(−2) at 30 wt% and 80 °C. The decrease in the average pore size of 77 nm and high wettability (contact angle 75°) contributed to the reduced ohmic resistance and low gas crossover. These results demonstrate that the use of ceria nanoparticle-based separators can achieve high performance compared to commercial zirconia-based separators.
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spelling pubmed-77599302020-12-26 Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer Lee, Jung Won Lee, ChangSoo Lee, Jae Hun Kim, Sang-Kyung Cho, Hyun-Seok Kim, MinJoong Cho, Won Chul Joo, Jong Hoon Kim, Chang-Hee Polymers (Basel) Article The intermittent and volatile nature of renewable energy sources threatens the stable operation of power grids, necessitating dynamically operated energy storage. Power-to-gas technology is a promising method for managing electricity variations on a large gigawatt (GW) scale. The electrolyzer is a key component that can convert excess electricity into hydrogen with high flexibility. Recently, organic/inorganic composite separators have been widely used as diaphragm membranes; however, they are prone to increase ohmic resistance and gas crossover, which inhibit electrolyzer efficiency. Here, we show that the ceria nanoparticle and polysulfone composite separator exhibits a low area resistance of 0.16 Ω cm(2) and a hydrogen permeability of 1.2 × 10(–12) mol cm(–1) s(–1) bar(–1) in 30 wt% potassium hydroxide (KOH) electrolyte, which outperformed the commercial separator, the Zirfon PERL separator. The cell using a 100 nm ceria nanoparticle/polysulfone separator and advanced catalysts has a remarkable capability of 1.84 V at 800 mA cm(−2) at 30 wt% and 80 °C. The decrease in the average pore size of 77 nm and high wettability (contact angle 75°) contributed to the reduced ohmic resistance and low gas crossover. These results demonstrate that the use of ceria nanoparticle-based separators can achieve high performance compared to commercial zirconia-based separators. MDPI 2020-11-27 /pmc/articles/PMC7759930/ /pubmed/33261186 http://dx.doi.org/10.3390/polym12122821 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lee, Jung Won
Lee, ChangSoo
Lee, Jae Hun
Kim, Sang-Kyung
Cho, Hyun-Seok
Kim, MinJoong
Cho, Won Chul
Joo, Jong Hoon
Kim, Chang-Hee
Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title_full Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title_fullStr Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title_full_unstemmed Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title_short Cerium Oxide–Polysulfone Composite Separator for an Advanced Alkaline Electrolyzer
title_sort cerium oxide–polysulfone composite separator for an advanced alkaline electrolyzer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7759930/
https://www.ncbi.nlm.nih.gov/pubmed/33261186
http://dx.doi.org/10.3390/polym12122821
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