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多乙烯基单体的(可控)自由基(共)聚合:策略、拓扑结构及生物医学应用

(Controlled) Free radical (co)polymerization of multivinyl monomers: strategies, topological structures and biomedical applications.

作者信息

Li Zhili, Yong Haiyang, Wang Kaixuan, Zhou Ya-Nan, Lyu Jing, Liang Lirong, Zhou Dezhong

机构信息

School of Chemical Engineering and Technology, Xi'an Jiaotong University, Xi'an, 710049, China.

Charles Institute of Dermatology, School of Medicine, University College Dublin, Dublin 4, Ireland.

出版信息

Chem Commun (Camb). 2023 Apr 4;59(28):4142-4157. doi: 10.1039/d3cc00250k.

Abstract

Free radical (co)polymerization (FRP/FRcP) of multivinyl monomers (MVMs) has emerged as a powerful strategy for the synthesis of chemically and topologically complex polymers due to its unique reaction kinetics, which enables the preparation of polymers with multiple functional groups and novel macromolecular structures. However, conventional FRP/FRcP of MVMs inevitably leads to insoluble crosslinked materials. Therefore, the development of advanced strategies for the controlled polymerization of MVMs is essential for the preparation of chemically and topologically complex polymers. In this review, we introduce the gelation mechanism of conventional FRP of MVMs and present the strategies of controlled polymerization of MVMs for the preparation of chemically and topologically complex polymers. We also discuss polymers with unique topologies synthesized by controlled polymerization of MVMs, such as crosslinked networks, (hyper)branched, star, cyclic, and single-chain cyclized/knotted structures. Finally, biomedical applications of various advanced polymeric materials prepared by controlled polymerization of MVMs are highlighted and the challenges is this field are discussed.

摘要

由于其独特的反应动力学,多乙烯基单体(MVMs)的自由基(共)聚合(FRP/FRcP)已成为合成化学和拓扑结构复杂聚合物的有力策略,这使得制备具有多个官能团和新型大分子结构的聚合物成为可能。然而,传统的MVMs的FRP/FRcP不可避免地会导致不溶性交联材料。因此,开发先进的MVMs可控聚合策略对于制备化学和拓扑结构复杂的聚合物至关重要。在这篇综述中,我们介绍了传统MVMs的FRP的凝胶化机制,并提出了用于制备化学和拓扑结构复杂聚合物的MVMs可控聚合策略。我们还讨论了通过MVMs的可控聚合合成的具有独特拓扑结构的聚合物,如交联网络、(超)支化、星形、环状和单链环化/打结结构。最后,强调了通过MVMs的可控聚合制备的各种先进聚合物材料的生物医学应用,并讨论了该领域面临的挑战。

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