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Constructing dual ionically cross-linked poly(acrylamide-co-acrylic acid) /chitosan hydrogel materials embedded with chitosan decorated halloysite nanotubes for exceptional mechanical performance

Authors
Li S.-N.Li B.Yu Z.-R.Li Y.Guo K.-Y.Gong L.-X.Feng Y.Jia D.Zhou Y.Tang L.-C.
Issue Date
Aug-2020
Publisher
Elsevier Ltd
Keywords
Dual cross-linked networks; Halloysite nanotubes; Mechanical properties; Nanocomposite hydrogel; Self-recoverability
Citation
Composites Part B: Engineering, v.194
Journal Title
Composites Part B: Engineering
Volume
194
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/60116
DOI
10.1016/j.compositesb.2020.108046
ISSN
1359-8368
Abstract
Hydrogels with exceptional mechanical properties at high water content are crucial need for practical applications in various fields. However, achieving a hydrogel possessed splendid mechanical performance with well trade-off between tensile strength and toughness is highly demanded due to the mechanical weakness of conventional hydrogel. Herein, we report a novel kind of nanocomposite hydrogel developed by integrating chitosan decorated halloysite nanotubes (CS-f-HNTs) into dual cross-linked structure composed of chemical and Fe3+ induced ionically cross-linked network. Combining the nanoparticle reinforcement with physical interactions including hydrogen bonds among polymer chains and ionic coordination interaction between Fe3+ ions and functional groups on chitosan chains and the copolymer chains, the hydrogel exhibits extraordinary and balanced mechanical performance, including high strength (3.06 MPa), outstanding stretchability (>2000%) and superior toughness (47.6 MJ m−3) in which water content remains ~80 wt%. Based on microstructure observation and dynamic mechanical behavior analysis, we demonstrated that the addition of CS-f-HNTs effectively bridged polymer chains via physical interactions and strengthened dual cross-linked network, leading to significant improved mechanical properties. Moreover, the hydrogels also possessed remarkable self-recoverability (97.9% for small strain (200%) and 91.5% for large strain (1000%)) at room temperature and the related mechanism was discussed. The strategy developed herein may provide a newfound avenue in the design and development of strong and tough hydrogel for promising applications in loading-bearing structural materials. © 2020 Elsevier Ltd
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