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High‐Strength,Durable All‐Silk Fibroin Hydrogels with Versatile Processability toward Multifunctional Applications
Authors:Zhenghua Zhu  Shengjie Ling  Jingjie Yeo  Siwei Zhao  Lorenzo Tozzi  Markus J Buehler  Fiorenzo Omenetto  Chunmei Li  David L Kaplan
Affiliation:1. Department of Applied Engineering, Zhejiang Institute of Economic and Trade, Hangzhou, Zhejiang Province, China;2. Department of Biomedical Engineering, Tufts University, Medford, MA, USA;3. Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA;4. School of Physical Science and Technology, ShanghaiTech University, Shanghai, China;5. Institute of High Performance Computing, A*STAR, Singapore, Singapore
Abstract:Hydrogels are the focus of extensive research due to their potential use in fields including biomedical, pharmaceutical, biosensors, and cosmetics. However, the general weak mechanical properties of hydrogels limit their utility. Here, pristine silk fibroin (SF) hydrogels with excellent mechanical properties are generated via a binary‐solvent‐induced conformation transition (BSICT) strategy. In this method, the conformational transition of SF is regulated by moderate binary solvent diffusion and SF/solvent interactions. β‐sheet formation serves as the physical crosslinks that connect disparate protein chains to form continuous 3D hydrogel networks, avoiding complex chemical and/or physical treatments. The Young's modulus of these new BSICT–SF hydrogels can reach up to 6.5 ± 0.2 MPa, tens to hundreds of times higher than that of conventional hydrogels (0.01–0.1 MPa). These new materials fill the “empty soft materials' space” in the elastic modulus/strain Ashby plot. More remarkably, the BSICT–SF hydrogels can be processed into different constructions through different polymer and/or metal‐based processing techniques, such as molding, laser cutting, and machining. Thus, these new hydrogel systems exhibit potential utility in many biomedical and engineering fields.
Keywords:biomaterials  complex structures  high‐strength hydrogels  silk
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