Bio-Inspired Lotus-Fiber-like Spiral Hydrogel Bacterial Cellulose Fibers

Hydrogel materials with high water content and good biocompatibility are drawing more and more attention now, especially for biomedical use. However, it still remains a challenge to construct hydrogel fibers with enough strength and toughness for practical applications. Herein, we report a bio-inspi...

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Veröffentlicht in:Nano letters 2021-01, Vol.21 (2), p.952-958
Hauptverfasser: Guan, Qing-Fang, Han, Zi-Meng, Zhu, YinBo, Xu, Wen-Long, Yang, Huai-Bin, Ling, Zhang-Chi, Yan, Bei-Bei, Yang, Kun-Peng, Yin, Chong-Han, Wu, HengAn, Yu, Shu-Hong
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Sprache:eng
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Zusammenfassung:Hydrogel materials with high water content and good biocompatibility are drawing more and more attention now, especially for biomedical use. However, it still remains a challenge to construct hydrogel fibers with enough strength and toughness for practical applications. Herein, we report a bio-inspired lotus-fiber-mimetic spiral structure hydrogel bacterial cellulose fiber with high strength, high toughness, high stretchability, and energy dissipation, named biomimetic hydrogel fiber (BHF). The spiral-like structure endows BHF with excellent stretchability through plastic deformation and local failure, assisted by the breaking–reforming nature of the hydrogen bonding network among cellulose nanofibers. With the high strength, high stretchability, high energy dissipation, high hydrophilicity, porous structure, and excellent biocompatibility, BHF is a promising hydrogel fiber for biomedicine. The outstanding stretchability and energy dissipation of BHF allow it to absorb energy from the tissue deformation around a wound and effectively protect the wound from rupture, which makes BHF an ideal surgical suture.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.0c03707