Literature DB >> 31386746

A strategy of tailoring polymorphs and nanostructures to construct self-reinforced nonswelling high-strength bacterial cellulose hydrogels.

Minghao Zhang1, Shiyan Chen, Nan Sheng, Baoxiu Wang, Jingjing Yao, Zhuotong Wu, Huaping Wang.   

Abstract

A serious decline in mechanical properties of polysaccharide hydrogels caused by swelling has always been a difficult problem which greatly limited their application especially in the medical field. Herein, nonswelling high-strength natural hydrogels based on self-reinforced double-crosslinked bacterial cellulose (SDBC) were prepared. Inspired by the concept of homogeneous composite materials, by regulating the ratio of LiOH/urea alkaline solvent, the aggregation structure and nanostructure of SDBC hydrogels can be controlled, thereby a unique nanofiber-network-self-reinforced (FNSR) structure was constructed and a new self-reinforcing mechanism is proposed. The prepared SDBC hydrogels have excellent mechanical properties at a high water content (>91%) for the combination of double-crosslinking and a unique FNSR structure, which can effectively prevent crack propagation and dissipate a large amount of energy. In particular, the compressive strength can reach 3.17 MPa which is 56 times that of native bacterial cellulose (BC). It is worth mentioning that no swelling occurs for the hydrogel, and the mechanical strength still remains in excess of 90% for 15 days in water, which is favorable for promising application in underwater equipment, implantable ionic devices, and tissue engineering scaffolds. This study also opens up a new horizon for the preparation of self-reinforced hydrogels.

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Year:  2019        PMID: 31386746     DOI: 10.1039/c9nr04462k

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  2 in total

1.  Strong, tough, ionic conductive, and freezing-tolerant all-natural hydrogel enabled by cellulose-bentonite coordination interactions.

Authors:  Siheng Wang; Le Yu; Shanshan Wang; Lei Zhang; Lu Chen; Xu Xu; Zhanqian Song; He Liu; Chaoji Chen
Journal:  Nat Commun       Date:  2022-06-21       Impact factor: 17.694

2.  Monolith/Hydrogel composites as triamcinolone acetonide carriers for curing corneal neovascularization in mice by inhibiting the fibrinolytic system.

Authors:  Cixin Huang; Xia Qi; Huilin Chen; Wei Chao; Xiaolin Qi; Hongwei Wang; Hua Gao
Journal:  Drug Deliv       Date:  2022-12       Impact factor: 6.419

  2 in total

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