超分子聚合体带来的阻燃和高强度聚合物材料

IF 13.9 Q1 CHEMISTRY, MULTIDISCIPLINARY
Lei Liu, Menghe Zhu, Jiabing Feng, Hong Peng, Yongqian Shi, Jiefeng Gao, Long-Cheng Tang, Pingan Song
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引用次数: 0

摘要

高性能聚合物因其低密度、良好的化学稳定性和优异的机械性能,在现代社会的各个行业中得到了广泛应用。然而,在聚合物得到广泛应用的同时,因其固有的易燃性而引发的火灾灾难却频频发生,给人类、经济和环境造成了巨大影响。近年来,人们对超分子化学进行了深入研究,希望通过超分子聚合体的物理屏障和炭催化效应,为聚合物提供阻燃性能。与此同时,超分子链与聚合物链之间的非共价相互作用,如氢键、π-π 相互作用、金属配体配位和协同作用,可增强基体的机械强度。这使得按需将物理化学特性和非共价相互作用整合到一个基于超分子聚合体的高性能聚合物体系中成为可能。然而,实现这些承诺还需要更多的研究。在此,我们将概述基于超分子结构和聚合体相互作用的阻燃和高强度聚合物材料的最新研究进展。本研究综述了这些材料的概念设计、表征、改性原理、性能、应用和机理。最后,还讨论了未来研究的发展挑战和前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Fire-retardant and high-strength polymeric materials enabled by supramolecular aggregates

Fire-retardant and high-strength polymeric materials enabled by supramolecular aggregates

Fire-retardant and high-strength polymeric materials enabled by supramolecular aggregates

High-performance polymers have proliferated in modern society across a variety of industries because of their low density, good chemical stability, and superior mechanical properties. However, while polymers are widely applied, frequent fire disasters induced by their intrinsic flammability have caused massive impacts on human beings, the economy, and the environment. Supramolecular chemistry has recently been intensively researched to provide fire retardancy for polymers via the physical barrier and char-catalyzing effects of supramolecular aggregates. In parallel, the noncovalent interactions between supramolecular and polymer chains, such as hydrogen bonding, π–π interactions, metal–ligand coordination, and synergistic interactions, can endow the matrix with enhanced mechanical strength. This makes it possible to integrate physical–chemical properties and noncovalent interactions into one supramolecular aggregate-based high-performance polymeric system on demand. However, fulfilling these promises needs more research. Here, we provide an overview of the latest research advances of fire-retardant and high-strength polymer materials based on supramolecular structures and interactions of aggregates. This work reviews their conceptual design, characterization, modification principles, performances, applications, and mechanisms. Finally, development challenges and perspectives on future research are also discussed.

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CiteScore
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