
| ID | 69082 |
| 著者 |
Watanabe, Takaichi
Department of Applied Chemistry, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
ORCID
Kaken ID
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Mizutani, Yuna
Department of Applied Chemistry, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
Lopez, Carlos G.
Material Science and Engineering Department, The Pennsylvania State University, 80 Pollock Road, State College
Ono, Tsutomu
Department of Applied Chemistry, Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
ORCID
Kaken ID
publons
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| 抄録 | Poly(ionic liquid) (PIL)-based ion gels have emerged as promising materials for advanced electrochemical applications because of their excellent miscibility with ionic liquids (IL), tunable mechanical properties, and high ionic conductivity. Despite extensive studies on PIL-based ion gels, a comprehensive understanding of how different anion combinations in the system affect physicochemical properties is lacking. In this study, we systematically investigate the effect of different anion species, such as bis(trifluoromethanesulfonyl)imide (TFSI) and hexafluorophosphate (PF6), on the mechanical, viscoelastic, and ion conductive behaviors of PIL-based ion gels. We investigate the interplay between anion size, packing density, and polymer segmental dynamics by varying the anion composition in both the PIL network and IL component. Rheological analysis and uniaxial tensile testing results indicate that PF6-containing ion gels exhibit enhanced higher Young’s modulus because of their restricted chain mobility resulting in higher glass transition temperature (Tg). In addition, we confirm the anion exchange between PIL and IL during gel preparation and find that the mechanical and ion conductive properties of the gels are governed by the total molar ratio of anions in the gels. Our findings highlight that tuning the anion composition in PIL-based ion gels provides an effective strategy to tailor their performance, with potential applications for flexible electronics and solid-state electrochemical devices.
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| キーワード | poly(ionic liquid)
anion exchange
gel
conductivity
toughness
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| 備考 | This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Applied Polymer Materials, copyright © American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acsapm.5c01905.
This fulltext file will be available in Jul. 2026.
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| 発行日 | 2025-07-28
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| 出版物タイトル |
ACS Applied Polymer Materials
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| 出版者 | American Chemical Society (ACS)
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| ISSN | 2637-6105
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| 資料タイプ |
学術雑誌論文
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| 言語 |
英語
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| OAI-PMH Set |
岡山大学
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| 著作権者 | © 2025 American Chemical Society
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| 論文のバージョン | author
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| DOI | |
| Web of Science KeyUT | |
| 関連URL | isVersionOf https://doi.org/10.1021/acsapm.5c01905
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| 助成情報 |
20KK0325:
マイクロ流路内の小角中性子散乱解析を利用した高分子イオン液体材料の非平衡構造制御
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
21H04629:
革新的水処理および創エネルギー技術の構築を目指した次世代型正浸透膜法の体系化
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
JPNP20004:
( 国立研究開発法人新エネルギー・産業技術総合開発機構 / New Energy and Industrial Technology Development Organization )
( 国立大学法人岡山大学 / Okayama University )
2024M-247:
( 公益財団法人JKA / Japan Keirin Autorace Foundation )
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