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共轭聚合物晶体中的晶体结构与高电子迁移率研究

Approaching Crystal Structure and High Electron Mobility in Conjugated Polymer Crystals.

作者信息

Yao Ze-Fan, Zheng Yu-Qing, Dou Jin-Hu, Lu Yang, Ding Yi-Fan, Ding Li, Wang Jie-Yu, Pei Jian

机构信息

Beijing National Laboratory for Molecular Sciences (BNLMS), Key Laboratory of Polymer Chemistry and Physics of Ministry of Education, Center of Soft Matter Science and Engineering, College of Chemistry and Molecular Engineering, Peking University, Beijing, 100871, China.

出版信息

Adv Mater. 2021 Mar;33(10):e2006794. doi: 10.1002/adma.202006794. Epub 2021 Jan 27.

Abstract

Conjugated polymers usually form crystallized and amorphous regions in the solid state simultaneously, making it difficult to accurately determine their precise microstructures. The lack of multiscale microstructures of conjugated polymers limits the fundamental understanding of the structure-property relationships in polymer-based optoelectronic devices. Here, crystals of two typical conjugated polymers based on four-fluorinated benzodifurandione-based oligo(p-phenylene vinylene) (F BDOPV) and naphthalenediimide (NDI) motifs, respectively, are obtained by a controlled self-assembly process. The strong diffractivity of the polymer crystals brings an opportunity to determine the crystal structures by combining X-ray techniques and molecular simulations. The precise polymer packing structures are useful as initial models to evaluate the charge transport properties in the ordered and disordered phases. Compared to the spin-coated thin films, the highly oriented polymer chains in crystals endow higher mobilities with a lower hopping energy barrier. Microwire crystal transistors of F BDOPV- and NDI-based polymers exhibit high electron mobilities of up to 5.58 and 2.56 cm  V  s , respectively, which are among the highest values in polymer crystals. This work presents a simple method to obtain polymer crystals and their precise microstructures, promoting a deep understanding of molecular packing and charge transport for conjugated polymers.

摘要

共轭聚合物在固态时通常会同时形成结晶区和非晶区,这使得准确确定其精确的微观结构变得困难。共轭聚合物缺乏多尺度微观结构,限制了对基于聚合物的光电器件中结构-性能关系的基本理解。在此,分别基于四氟苯并二呋喃二酮基聚(对苯撑乙烯)(F BDOPV)和萘二酰亚胺(NDI)基序的两种典型共轭聚合物的晶体,通过可控的自组装过程获得。聚合物晶体的强衍射性为结合X射线技术和分子模拟来确定晶体结构带来了契机。精确的聚合物堆积结构可用作初始模型,以评估有序和无序相中电荷传输特性。与旋涂薄膜相比,晶体中高度取向的聚合物链具有更高的迁移率和更低的跳跃能垒。基于F BDOPV和NDI的聚合物的微线晶体晶体管分别表现出高达5.58和2.56 cm² V⁻¹ s⁻¹的高电子迁移率,这是聚合物晶体中的最高值之一。这项工作提出了一种获得聚合物晶体及其精确微观结构的简单方法,促进了对共轭聚合物分子堆积和电荷传输的深入理解。

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