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基于双重反应性的动态共价化学:机理与应用

Dual reactivity based dynamic covalent chemistry: mechanisms and applications.

作者信息

You Lei

机构信息

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.

University of Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Chem Commun (Camb). 2023 Oct 31;59(87):12943-12958. doi: 10.1039/d3cc04022d.

Abstract

Dynamic covalent chemistry (DCC) focuses on the reversible formation, breakage, and exchange of covalent bonds and assemblies, setting a bridge between irreversible organic synthesis and supramolecular chemistry and finding wide utility. In order to enhance structural and functional diversity and complexity, different types of dynamic covalent reactions (DCRs) are placed in one vessel, encompassing orthogonal DCC without crosstalk and communicating DCC with a shared reactive functional group. As a means of adding tautomers, widespread in chemistry, to interconnected DCRs and combining the features of orthogonal and communicating DCRs, a concept of dual reactivity based DCC and underlying structural and mechanistic insights are summarized. The manipulation of the distinct reactivity of structurally diverse ring-chain tautomers allows selective activation and switching of reaction pathways and corresponding DCRs (C-N, C-O, and C-S) and assemblies. The coupling with photoswitches further enables light-mediated formation and scission of multiple types of reversible covalent bonds. To showcase the capability of dual reactivity based DCC, the versatile applications in dynamic polymers and luminescent materials are presented, paving the way for future functionalization studies.

摘要

动态共价化学(DCC)专注于共价键和组装体的可逆形成、断裂和交换,在不可逆有机合成和超分子化学之间架起了一座桥梁,并具有广泛的用途。为了增强结构和功能的多样性与复杂性,将不同类型的动态共价反应(DCR)置于一个容器中,包括无串扰的正交DCC和具有共享反应性功能基团的通信DCC。作为一种将化学中广泛存在的互变异构体添加到相互连接的DCR中并结合正交和通信DCR特征的方法,总结了基于双反应性的DCC概念以及潜在的结构和机理见解。对结构多样的环链互变异构体不同反应性的操控允许反应途径以及相应的DCR(C-N、C-O和C-S)和组装体的选择性活化和切换。与光开关的耦合进一步实现了光介导的多种类型可逆共价键的形成和断裂。为了展示基于双反应性的DCC的能力,介绍了其在动态聚合物和发光材料中的广泛应用,为未来的功能化研究铺平了道路。

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