Journal of Materials Chemistry2022,Vol.10Issue(26) :12.DOI:10.1039/d2ta03262g

A multiscale biomimetic strategy to design strong, tough hydrogels by tuning the self-assembly behavior of cellulose

Xie Yitong Gao Shishuai Ling Zhe Lai Chenhuan Huang Yuxiang Wang Jifu Wang Chunpeng Chu Fuxiang Xu Feng Dumont Marie-Josée Zhang Daihui
Journal of Materials Chemistry2022,Vol.10Issue(26) :12.DOI:10.1039/d2ta03262g

A multiscale biomimetic strategy to design strong, tough hydrogels by tuning the self-assembly behavior of cellulose

Xie Yitong 1Gao Shishuai 1Ling Zhe 2Lai Chenhuan 2Huang Yuxiang 3Wang Jifu 1Wang Chunpeng 1Chu Fuxiang 1Xu Feng 4Dumont Marie-Josée 5Zhang Daihui1
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作者信息

  • 1. Key Laboratory of Biomass Energy and Material
  • 2. Nanjing Forestry University
  • 3. Chinese Academy of Forestry
  • 4. Beijing Forestry University
  • 5. McGill University
  • 折叠

Abstract

Strong and tough hydrogels have gained popularity for various applications; however, their fabrication remains challenging, particularly when incorporating functionalities. Here, we describe a novel facile multiscale biomimetic strategy that combines molecular and structural engineering to fabricate strong and tough hydrogels. More specifically, a non-covalent-bonding-driven self-assembled cellulose skeleton is embedded in a polyacrylamide matrix. Water-induced cellulose self-assembly facilitates the production of a biomimetic design. The resulting hydrogel exhibited unique interesting features, including the hierarchical structure of the skin, molecular-scale regulation of the enhanced skeleton, and incorporation of physical interfacial interactions. The resultant hydrogels showed excellent tensile strength, toughness and stretchability, with antibacterial, anti-freezing, and adhesive properties desirable for sensor applications. This study proposes an effective strategy that can be used to overcome the challenge of the mutual exclusivity of high strength and toughness and circumvent the trade-off between functionalities and mechanical properties. Thus, this study provides new insights for designing strong and tough hydrogels.

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出版年

2022
Journal of Materials Chemistry

Journal of Materials Chemistry

ISSN:2050-7488
被引量32
参考文献量68
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