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Rapidly damping hydrogels engineered through molecular friction

Engineering and Technology

Rapidly damping hydrogels engineered through molecular friction

Z. Xu, J. Lu, et al.

Discover the innovative friction-based damping hydrogel developed by Zhengyu Xu, Jiajun Lu, Di Lu, Yiran Li, Hai Lei, Bin Chen, Wenfei Li, Bin Xue, Yi Cao, and Wei Wang. This remarkable material not only dissipates mechanical stress swiftly but also protects encapsulated cells from trauma—potentially revolutionizing applications like artificial muscles and synthetic cartilage.... show more
Abstract
Hydrogels capable of swift mechanical energy dissipation hold promise for a range of applications including impact protection, shock absorption, and enhanced damage resistance. Traditional energy absorption in such materials typically relies on viscoelastic mechanisms, involving sacrificial bond breakage, yet often suffers from prolonged recovery times. Here, we introduce a hydrogel designed for friction-based damping. This hydrogel features an internal structure that facilitates the motion of a chain walker within its network, effectively dissipating mechanical stress. The hydrogel network architecture allows for rapid restoration of its damping capacity, often within seconds, ensuring swift material recovery post-deformation. We further demonstrate that this hydrogel can significantly shield encapsulated cells from mechanical trauma under repetitive compression, owing to its proficient energy damping and rapid rebound characteristics. Therefore, this hydrogel has potential for dynamic load applications like artificial muscles and synthetic cartilage, expanding the use of hydrogel dampers in biomechanics and related areas.
Publisher
Nature Communications
Published On
Jun 08, 2024
Authors
Zhengyu Xu, Jiajun Lu, Di Lu, Yiran Li, Hai Lei, Bin Chen, Wenfei Li, Bin Xue, Yi Cao, Wei Wang
Tags
hydrogels
mechanical energy dissipation
impact protection
shock absorption
friction-based damping
cell protection
synthetic cartilage
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