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由梯度扭曲胶合板结构增强的仿生结构水凝胶

Biomimetic Structural Hydrogels Reinforced by Gradient Twisted Plywood Architectures.

作者信息

Tang Yulu, Wu Bentao, Li Jie, Lu Canhui, Wu Jianing, Xiong Rui

机构信息

State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu, 610065, P. R. China.

School of Advanced Manufacturing, Sun Yat-sen University, Shenzhen, 51000, P. R. China.

出版信息

Adv Mater. 2025 Jan;37(1):e2411372. doi: 10.1002/adma.202411372. Epub 2024 Nov 1.

Abstract

Naturally structural hydrogels such as crustacean exoskeletons possess a remarkable combination of seemingly contradictory properties: high strength, modulus, and toughness coupled with exceptional fatigue resistance, owing to their hierarchical structures across multiple length scales. However, replicating these unique mechanical properties in synthetic hydrogels remains a significant challenge. This work presents a synergistic approach for constructing hierarchical structural hydrogels by employing cholesteric liquid crystal self-assembly followed by nanocrystalline engineering. The resulting hydrogels exhibit a long-range ordered gradient twisted plywood structure with high crystallinity to mimic the design of crustacean exoskeletons. Consequently, the structural hydrogels achieve an unprecedented combination of ultrahigh strength (46 ± 3 MPa), modulus (496 ± 25 MPa), and toughness (170 ± 14 MJ m), together with recorded high fatigue threshold (32.5 kJ m) and superior impact resistance (48 ± 2 kJ m). Additionally, through controlling geometry and compositional gradients of the hierarchical structures, a programmable shape morphing process allows for the fabrication of complex 3D hydrogels. This study not only offers valuable insights into advanced design strategies applicable to a broad range of promising hierarchical materials, but also pave the ways for load-bearing applications in tissue engineering, wearable devices, and soft robotics.

摘要

诸如甲壳类动物外骨骼等天然结构水凝胶具有一系列看似相互矛盾的特性的非凡组合

高强度、模量和韧性,以及出色的抗疲劳性,这归因于它们在多个长度尺度上的分级结构。然而,在合成水凝胶中复制这些独特的机械性能仍然是一项重大挑战。这项工作提出了一种协同方法,通过采用胆甾型液晶自组装然后进行纳米晶体工程来构建分级结构水凝胶。所得水凝胶呈现出具有高结晶度的长程有序梯度扭曲胶合板结构,以模仿甲壳类动物外骨骼的设计。因此,这种结构水凝胶实现了超高强度(46±3兆帕)、模量(496±25兆帕)和韧性(170±14兆焦/立方米)的前所未有的组合,同时记录到高疲劳阈值(32.5千焦/立方米)和卓越的抗冲击性(48±2千焦/立方米)。此外,通过控制分级结构的几何形状和成分梯度,可编程的形状变形过程允许制造复杂的三维水凝胶。这项研究不仅为适用于广泛有前景的分级材料的先进设计策略提供了有价值的见解,也为组织工程、可穿戴设备和软机器人中的承重应用铺平了道路。

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