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ID 65945
フルテキストURL
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著者
Ikura, Ryohei Department of Macromolecular Science, Graduate School of Science and Forefront Research Center for Fundamental Sciences, Osaka University
Kajimoto, Kota Department of Macromolecular Science, Graduate School of Science, Osaka University
Park, Junsu Department of Macromolecular Science, Graduate School of Science and Forefront Research Center for Fundamental Sciences, Osaka University
Murayama, Shunsuke Graduate School of Organic Materials Engineering, Yamagata University
Fujiwara, Yusei Department of Mechanical Engineering, Osaka Institute of Technology
Osaki, Motofumi Department of Macromolecular Science, Graduate School of Science and Forefront Research Center for Fundamental Sciences, Osaka University
Suzuki, Tomohiro Kanagawa Technical Center, Yushiro Chemical Industry Co., Ltd.
Shirakawa, Hidenori Kanagawa Technical Center, Yushiro Chemical Industry Co., Ltd.
Kitamura, Yujiro Kanagawa Technical Center, Yushiro Chemical Industry Co., Ltd.
Takahashi, Hiroaki Kanagawa Technical Center, Yushiro Chemical Industry Co., Ltd.
Ohashi, Yasumasa Kanagawa Technical Center, Yushiro Chemical Industry Co., Ltd.
Obata, Seiji Research Core for Interdisciplinary Sciences, Okayama University
Harada, Akira SANKEN (The Institute of Scientific and Industrial Research), Osaka University
Ikemoto, Yuka Japan Synchrotron Radiation Research Institute
Nishina, Yuta Research Core for Interdisciplinary Sciences, Okayama University ORCID Kaken ID publons researchmap
Uetsuji, Yasutomo Department of Mechanical Engineering, Osaka Institute of Technology
Matsuba, Go Graduate School of Organic Materials Engineering, Yamagata University
Takashima, Yoshinori Department of Macromolecular Science, Graduate School of Science and Forefront Research Center for Fundamental Sciences, Osaka University
抄録
Practical applications like very thin stress-strain sensors require high strength, stretchability, and conductivity, simultaneously. One of the approaches is improving the toughness of the stress-strain sensing materials. Polymeric materials with movable cross-links in which the polymer chain penetrates the cavity of cyclodextrin (CD) demonstrate enhanced strength and stretchability, simultaneously. We designed two approaches that utilize elastomer nanocomposites with movable cross-links and carbon filler (ketjenblack, KB). One approach is mixing SC (a single movable cross-network material), a linear polymer (poly(ethyl acrylate), PEA), and KB to obtain their composite. The electrical resistance increases proportionally with tensile strain, leading to the application of this composite as a stress- strain sensor. The responses of this material are stable for over 100 loading and unloading cycles. The other approach is a composite made with KB and a movable cross-network elastomer for knitting dissimilar polymers (KP), where movable cross-links connect the CD-modified polystyrene (PSCD) and PEA. The obtained composite acts as a highly sensitive stress-strain sensor that exhibits an exponential increase in resistance with increasing tensile strain due to the polymer dethreading from the CD rings. The designed preparations of highly repeatable or highly responsive stress-strain sensors with good mechanical properties can help broaden their application in electrical devices.
キーワード
stress-strain sensor
carbon composite
movable cross-link
supramolecular materials
polymericmaterials
tough materials
upcycling
発行日
2023-09-11
出版物タイトル
ACS Polymers Au
3巻
5号
出版者
American Chemical Society
開始ページ
394
終了ページ
405
ISSN
2694-2453
資料タイプ
学術雑誌論文
言語
英語
OAI-PMH Set
岡山大学
著作権者
© 2022 The Authors.
論文のバージョン
publisher
DOI
Web of Science KeyUT
関連URL
isVersionOf https://doi.org/10.1021/acspolymersau.3c00010
ライセンス
https://creativecommons.org/licenses/by-nc-nd/4.0/
助成機関名
Ministry of Education, Culture, Sports, Science and Technology
Japan Science and Technology Agency
助成番号
JP19H05714
JP19H05721
JP22H04548
JP19H05717
JPMJCR22L4