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通过协同氢键和偶极-偶极交联实现的超拉伸、自恢复、缺口不敏感、自愈合和粘性水凝胶。

Ultra-stretchable, self-recoverable, notch-insensitive, self-healable and adhesive hydrogel enabled by synergetic hydrogen and dipole-dipole crosslinking.

作者信息

Yuan Wanting, He Yi, Liang Qianqian, Lv Hongyi, Wang Ziqi, Wu Haitao, Wu Jinrong, Zhao Lijuan, Wang Yi

机构信息

College of Chemistry and Materials Science, Sichuan Normal University, Chengdu, 610068, China.

State Key Laboratory of Polymer Materials Engineering, College of Polymer Science and Engineering, Sichuan University, Chengdu, 610065, China.

出版信息

Mater Horiz. 2025 Mar 31;12(7):2223-2233. doi: 10.1039/d4mh01462f.

Abstract

Hydrogels are promising materials for wearable electronics, artificial skins and biomedical engineering, but their limited stretchability, self-recovery and crack resistance restrict their performance in demanding applications. Despite efforts to enhance these properties using micelle cross-links, nanofillers and dynamic interactions, it remains a challenge to fabricate hydrogels that combine high stretchability, self-healing and strong adhesion. Herein, we report a novel hydrogel synthesized the copolymerization of acrylamide (AM), maleic acid (MA) and acrylonitrile (AN), designed to address these limitations. The resulting hydrogel forms a dual physical crosslinking network enabled by dynamic hydrogen bonds and dipole-dipole interactions. This hierarchical structure allows polymer chains to undergo progressive deformation, leading to ultrahigh stretchability exceeding 9000% and excellent fatigue resistance under cyclic strains of up to 3000%. Furthermore, the hydrogel exhibits outstanding notch-insensitivity (fracture energy: >10 kJ m), notable adhesive properties and superior self-healing capabilities. The incorporation of LiCl imparts conductivity to the hydrogel, making it suitable for wearable strain sensors that can accurately monitor human motion. These results demonstrate the successful development of an ultra-stretchable, self-recoverable, notch-insensitive, self-healable and adhesive hydrogel with significant potential for advanced applications in wearable electronics and healthcare monitoring devices. This work represents a significant step forward in the design of multifunctional hydrogels, offering new pathways for the development of next-generation soft materials with enhanced mechanical and functional properties.

摘要

水凝胶是可穿戴电子产品、人造皮肤和生物医学工程领域中很有前景的材料,但其有限的拉伸性、自我恢复能力和抗裂性限制了它们在苛刻应用中的性能。尽管人们努力通过胶束交联、纳米填料和动态相互作用来增强这些性能,但制造兼具高拉伸性、自我修复和强粘附性的水凝胶仍然是一项挑战。在此,我们报告了一种通过丙烯酰胺(AM)、马来酸(MA)和丙烯腈(AN)共聚合成的新型水凝胶,旨在解决这些局限性。所得水凝胶形成了由动态氢键和偶极 - 偶极相互作用实现的双重物理交联网络。这种分级结构允许聚合物链进行渐进变形,从而实现超过9000%的超高拉伸性以及在高达3000%的循环应变下具有出色的抗疲劳性。此外,该水凝胶表现出出色的缺口不敏感性(断裂能:>10 kJ m)、显著的粘附性能和卓越的自我修复能力。LiCl的加入赋予了水凝胶导电性,使其适用于能够精确监测人体运动的可穿戴应变传感器。这些结果表明成功开发了一种超拉伸、可自我恢复、缺口不敏感、可自我修复且具有粘附性的水凝胶,在可穿戴电子产品和医疗监测设备的先进应用中具有巨大潜力。这项工作代表了多功能水凝胶设计方面的重大进展,为开发具有增强机械和功能特性的下一代软材料提供了新途径。

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