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动态共价聚合物网络:超越化学回收和自修复的功能设计的分子平台。

Dynamic Covalent Polymer Networks: A Molecular Platform for Designing Functions beyond Chemical Recycling and Self-Healing.

机构信息

State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, 38 Zheda Road, Hangzhou, 310027, People's Republic of China.

ZJU-Hangzhou Global Scientific and Technological Innovation Center, Hangzhou, 311215, People's Republic of China.

出版信息

Chem Rev. 2021 Feb 10;121(3):1716-1745. doi: 10.1021/acs.chemrev.0c00938. Epub 2021 Jan 4.

Abstract

Dynamic covalent polymer networks (DCPN) have historically attracted attention for their unique roles in chemical recycling and self-healing, which are both relevant for sustainable societal development. Efforts in these directions have intensified in the past decade with notable progress in newly discovered dynamic covalent chemistry, fundamental material concepts, and extension toward emerging applications including energy and electronic devices. Beyond that, the values of DCPN in discovering/designing functional properties not offered by classical thermoplastic and thermoset polymers have recently gained traction. In particular, the dynamic bond exchangeability of DCPN has shown unparalleled design versatility in various areas including shape-shifting materials/devices, artificial muscles, and microfabrication. Going beyond this basic bond exchangeability, various molecular mechanisms to manipulate network topologies (topological transformation) have led to opportunities to program polymers, with notable concepts such as living networks and topological isomerization. In this review, we provide an overview of the above progress with particular focuses on molecular design strategies for the exploitation of functional material properties. Based on this, we point out the remaining issues and offer perspectives on how this class of materials can shape the future in ways that are complementary with classical thermoplastic and thermoset polymers.

摘要

动态共价聚合物网络 (DCPN) 因其在化学回收和自修复方面的独特作用而备受关注,这两者都与可持续的社会发展息息相关。在过去十年中,随着新发现的动态共价化学、基础材料概念的发展,以及在能源和电子设备等新兴应用领域的拓展,人们在这些方向上的努力得到了加强。除此之外,DCPN 在发现/设计经典热塑性和热固性聚合物所不具备的功能特性方面的价值最近也受到了关注。特别是 DCPN 的动态键可交换性在各种领域,包括形状记忆材料/器件、人造肌肉和微制造中,展现出了无与伦比的设计灵活性。超越这种基本的键可交换性,各种用于控制网络拓扑结构(拓扑转变)的分子机制为聚合物的编程提供了机会,其中引人注目的概念包括活的网络和拓扑异构化。在这篇综述中,我们提供了上述进展的概述,特别关注了用于开发功能材料特性的分子设计策略。在此基础上,我们指出了存在的问题,并就这类材料如何以与经典热塑性和热固性聚合物互补的方式塑造未来提出了看法。

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