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通过精确轻度交联制备具有前所未有的能量密度的超高刚度和韧性形状记忆聚脲。

Ultra-Highly Stiff and Tough Shape Memory Polyurea with Unprecedented Energy Density by Precise Slight Cross-Linking.

作者信息

Chen Jiaoyang, Wang Zhifeng, Yao Bowen, Geng Yuhao, Wang Cheng, Xu Jianhua, Chen Tao, Jing Jiajie, Fu Jiajun

机构信息

School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.

Testing Center, Yangzhou University, Yangzhou, 225002, P. R. China.

出版信息

Adv Mater. 2024 Jul;36(27):e2401178. doi: 10.1002/adma.202401178. Epub 2024 Apr 28.

Abstract

Shape memory polymers (SMPs) have attracted significant attention and hold vast potential for diverse applications. Nevertheless, conventional SMPs suffer from notable shortcomings in terms of mechanical properties, environmental stability, and energy density, significantly constraining their practical utility. Here, inspired by the structure of muscle fibers, an innovative approach that involves the precise incorporation of subtle, permanent cross-linking within a hierarchical hydrogen bonding supramolecular network is reported. This novel strategy has culminated in the development of covalent and supramolecular shape memory polyurea, which exhibits exceptional mechanical properties, including high stiffness (1347 MPa), strength (82.4 MPa), and toughness (312.7 MJ m), ensuring its suitability for a wide range of applications. Furthermore, it boasts remarkable recyclability and repairability, along with excellent resistance to moisture, heat, and solvents. Moreover, the polymer demonstrates outstanding shape memory effects characterized by a high energy density (24.5 MJ m), facilitated by the formation of strain-induced oriented nanostructures that can store substantial amounts of entropic energy. Simultaneously, it maintains a remarkable 96% shape fixity and 99% shape recovery. This delicate interplay of covalent and supramolecular bonds opens up a promising pathway to the creation of high-performance SMPs, expanding their applicability across various domains.

摘要

形状记忆聚合物(SMPs)已引起广泛关注,并在各种应用中具有巨大潜力。然而,传统的SMPs在机械性能、环境稳定性和能量密度方面存在显著缺点,这严重限制了它们的实际应用。在此,受肌肉纤维结构的启发,报道了一种创新方法,即在分级氢键超分子网络中精确引入微妙的永久交联。这一新颖策略最终促成了共价和超分子形状记忆聚脲的开发,其具有卓越的机械性能,包括高刚度(1347兆帕)、强度(82.4兆帕)和韧性(312.7兆焦/立方米),确保其适用于广泛的应用。此外,它具有显著的可回收性和可修复性,以及出色的防潮、耐热和耐溶剂性。此外,该聚合物表现出优异的形状记忆效应,其特征在于高能量密度(24.5兆焦/立方米),这得益于应变诱导取向纳米结构的形成,该结构可以存储大量的熵能。同时,它保持了高达96%的形状固定率和99%的形状回复率。共价键和超分子键之间这种微妙的相互作用为创建高性能SMPs开辟了一条充满希望的途径,扩大了它们在各个领域的适用性。

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