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共轭聚合物的构象控制。

Conformation Control of Conjugated Polymers.

机构信息

College of Chemistry and Molecular Engineering and College of Engineering, Peking University, Beijing, 100871, P. R. China.

出版信息

Chemistry. 2020 Dec 9;26(69):16194-16205. doi: 10.1002/chem.202000220. Epub 2020 Sep 23.

Abstract

In the past few decades, conjugated polymers have aroused extensive interest in organic electronic applications. The electrical performance of conjugated polymers has a close relationship with their backbone conformation. The conformation of the polymer backbone strongly affects the πelectron delocalization along polymer chains, the energy band gap, interchain interactions, and further affects charge transport properties. To realize a rigid coplanar backbone that usually possesses efficient intrachain charge transport properties and enhanced π-π stackings, such conformation control becomes a useful strategy to achieve high-performance (semi)conducting polymers. This minireview summarizes the most important polymer structures through conformation control at the molecular level, and then divides these rigid coplanar conjugated polymers into three categories: 1) noncovalent interactions locked conjugated polymers; 2) double-bond linked conjugated polymers; 3) ladder conjugated polymers. The effect of the conformation control on physical nature, optoelectronic properties, and their device performance is also discussed, as well as the challenges of chemical synthesis and structural characterization.

摘要

在过去的几十年中,共轭聚合物在有机电子应用中引起了广泛的兴趣。共轭聚合物的电性能与其主链构象密切相关。聚合物主链的构象强烈影响聚合物链上的π电子离域、能隙、链间相互作用,进而影响电荷输运性质。为了实现刚性共面主链,通常具有高效的分子内电荷输运性质和增强的π-π堆积,这种构象控制成为实现高性能(半)导性聚合物的有用策略。这篇小综述总结了通过分子水平上的构象控制得到的最重要的聚合物结构,并将这些刚性共面共轭聚合物分为三类:1)非共价相互作用锁定共轭聚合物;2)双键连接共轭聚合物;3)梯形共轭聚合物。还讨论了构象控制对物理性质、光电性质及其器件性能的影响,以及化学合成和结构表征方面的挑战。

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