JOURNAL ARTICLE

Spider-silk-inspired strong and tough hydrogel fibers with anti-freezing and water retention properties

Abstract

Abstract Ideal hydrogel fibers with high toughness and environmental tolerance are indispensable for their long-term application in flexible electronics as actuating and sensing elements. However, current hydrogel fibers exhibit poor mechanical properties and environmental instability due to their intrinsically weak molecular (chain) interactions. Inspired by the multilevel adjustment of spider silk network structure by ions, bionic hydrogel fibers with elaborated ionic crosslinking and crystalline domains are constructed. Bionic hydrogel fibers show a toughness of 162.25 ± 21.99 megajoules per cubic meter, comparable to that of spider silks. The demonstrated bionic structural engineering strategy can be generalized to other polymers and inorganic salts for fabricating hydrogel fibers with broadly tunable mechanical properties. In addition, the introduction of inorganic salt/glycerol/water ternary solvent during constructing bionic structures endows hydrogel fibers with anti-freezing, water retention, and self-regeneration properties. This work provides ideas to fabricate hydrogel fibers with high mechanical properties and stability for flexible electronics.

Keywords:
Spider silk Materials science Toughness Self-healing hydrogels Polymer SILK Nanotechnology Composite material Ionic bonding Ternary operation Spider Chemical engineering Polymer chemistry Ion Chemistry Computer science

Metrics

142
Cited By
49.84
FWCI (Field Weighted Citation Impact)
62
Refs
1.00
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Silk-based biomaterials and applications
Physical Sciences →  Materials Science →  Biomaterials
Advanced Materials and Mechanics
Physical Sciences →  Engineering →  Mechanical Engineering
Advanced Sensor and Energy Harvesting Materials
Physical Sciences →  Engineering →  Biomedical Engineering
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