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通过分子摩擦设计的快速阻尼水凝胶。

Rapidly damping hydrogels engineered through molecular friction.

作者信息

Xu Zhengyu, Lu Jiajun, Lu Di, Li Yiran, Lei Hai, Chen Bin, Li Wenfei, Xue Bin, Cao Yi, Wang Wei

机构信息

Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing, 210093, China.

Institute for Brain Sciences, Nanjing University, Nanjing, 210093, China.

出版信息

Nat Commun. 2024 Jun 8;15(1):4895. doi: 10.1038/s41467-024-49239-4.

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.

摘要

能够迅速耗散机械能的水凝胶在一系列应用中具有潜力,包括冲击保护、减震和增强抗损伤能力。此类材料中的传统能量吸收通常依赖于粘弹性机制,涉及牺牲键的断裂,但往往恢复时间较长。在此,我们介绍一种专为基于摩擦的阻尼设计的水凝胶。这种水凝胶具有一种内部结构,有助于链状行走器在其网络内运动,有效耗散机械应力。水凝胶网络结构使其阻尼能力通常能在数秒内迅速恢复,确保变形后材料能快速恢复。我们进一步证明,由于其出色的能量阻尼和快速回弹特性,这种水凝胶在重复压缩下能显著保护封装的细胞免受机械创伤。因此,这种水凝胶在人工肌肉和合成软骨等动态负载应用方面具有潜力,扩大了水凝胶阻尼器在生物力学及相关领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3199/11162443/fd3f6d0e33a9/41467_2024_49239_Fig1_HTML.jpg

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