基于可逆非共价和动态共价相互作用的自愈水凝胶:简要综述

Meng Wu , Linbo Han , Bin Yan , Hongbo Zeng
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引用次数: 0

摘要

材料的自愈能力是指材料能够自主愈合断裂或缺陷,恢复其原有结构和功能的能力。与传统的易碎水凝胶相比,自修复水凝胶具有更长的寿命和机械性能,可以作为理想的活体组织合成类似物,在广泛的生物医学、电气和环境应用中具有很大的前景。可逆相互作用在自愈水凝胶网络的构建中起着至关重要的作用。深入了解这些键对于合理设计具有理想性能的水凝胶至关重要。在这篇综述中,我们首先介绍了可逆分子间相互作用的直接测量实验工具,然后讨论了通过各种非共价相互作用(如氢键、离子相互作用、金属配位、疏水缔合和π相互作用)和动态共价键(如亚胺、硼酯、腙和二硫键)实现自愈的水凝胶。提出了自愈水凝胶研究面临的挑战和对未来发展的展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-healing hydrogels based on reversible noncovalent and dynamic covalent interactions: A short review

The self-healing capability of a material refers to its ability to autonomously heal fractures or defects and restore its original structures and functionalities. Self-healing hydrogels, with enhanced lifespan and mechanical performances compared to traditional fragile hydrogels, can serve as ideal synthetic analogues of living tissues, holding great promise in a wide range of biomedical, electrical and environmental applications. Reversible interactions play crucial roles in the construction of self-healing hydrogel networks. A deep understanding of these bonds is critical for the rational design of hydrogels with desirable properties. In this short review, we first introduce the experimental tools for the direct measurements of reversible intermolecular interactions, followed by discussing the self-healing hydrogels via diverse noncovalent interactions (i.e., hydrogen bonding, ionic interaction, metal-ligand coordination, hydrophobic association and π-interactions) and dynamic covalent bonds (i.e., imines, boronic esters, hydrazones and disulfide bond). Challenges and our opinions on future development of self-healing hydrogels are also provided.

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