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通过高密度氢键交联策略实现的可自愈、可回收且超坚韧的水性聚氨酯弹性体

Healable, Recyclable, and Ultra-Tough Waterborne Polyurethane Elastomer Achieved through High-Density Hydrogen Bonding Cross-Linking Strategy.

作者信息

Wu Chao-Qun, Chen Jie, Long Qi-Yue, Sun De-Xiang, Qi Xiao-Dong, Yang Jing-Hui, Wang Yong

机构信息

School of Chemistry, Key Laboratory of Advanced Technologies of Materials (Ministry of Education), Southwest Jiaotong University, Chengdu 610031, China.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 20;16(46):64333-64344. doi: 10.1021/acsami.4c15188. Epub 2024 Nov 6.

Abstract

With the increasing popularity of elastomers in industry and daily life, their high performance and functionality have attracted widespread attention. However, it is a great challenge for them to possess both high mechanical properties and excellent healing and recovery capabilities due to the limitations of the preparation methods and the intrinsic microstructure of the elastomers. In this study, a strategy of ice-controlled interfacial stepwise cross-linking was proposed to prepare the waterborne polyurethane-based elastomers with ultrahigh-density hydrogen bonding interaction achieved by enhancing the utilization rate of phenol hydroxyl groups of tannic acid to the maximum extent. The elastomers have incredible mechanical properties, including ultrahigh toughness of 1.03 GJ m (which represents the highest level among polyurethane elastomers prepared through common processing techniques to date), extremely high true fracture stress of ∼1.9 GPa, world-record fracture energy of 520 kJ m, and exciting multiple functional characteristics, such as highly efficient self-healing ability of 10 min, high resistance to physical damage and chemical corrosion, broad temperature and frequency damping effects, good shape memory effect, and excellent melt-processing recyclability and solvent recyclability. These robust multifunctional elastomers represent considerable potential in various fields, from defense and military industry and civil transportation to precision manufacturing, etc.

摘要

随着弹性体在工业和日常生活中的日益普及,其高性能和功能性受到了广泛关注。然而,由于制备方法的局限性以及弹性体本身的微观结构,要使其同时具备高机械性能和优异的愈合与恢复能力是一项巨大的挑战。在本研究中,提出了一种冰控界面逐步交联策略,以制备具有超高密度氢键相互作用的水性聚氨酯基弹性体,这是通过最大限度提高单宁酸酚羟基的利用率实现的。这些弹性体具有令人难以置信的机械性能,包括1.03 GJ/m的超高韧性(这是迄今为止通过常规加工技术制备的聚氨酯弹性体中的最高水平)、约1.9 GPa的极高真实断裂应力、520 kJ/m的世界纪录断裂能,以及令人兴奋的多种功能特性,如10分钟的高效自愈合能力、高抗物理损伤和化学腐蚀能力、宽温度和频率阻尼效应、良好的形状记忆效应,以及优异的熔体加工可回收性和溶剂可回收性。这些坚固的多功能弹性体在从国防军工、民用运输到精密制造等各个领域都展现出了巨大的潜力。

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