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基于噻吩-二酮吡咯并吡咯的醌型小分子作为可溶液加工且空气稳定的有机半导体:调整烷基侧链的长度和分支位置以制备高性能n沟道有机场效应晶体管

Thiophene-Diketopyrrolopyrrole-Based Quinoidal Small Molecules as Solution-Processable and Air-Stable Organic Semiconductors: Tuning of the Length and Branching Position of the Alkyl Side Chain toward a High-Performance n-Channel Organic Field-Effect Transistor.

作者信息

Wang Chao, Qin Yunke, Sun Yuanhui, Guan Ying-Shi, Xu Wei, Zhu Daoben

机构信息

†Beijing National Laboratory for Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China.

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

出版信息

ACS Appl Mater Interfaces. 2015 Jul 29;7(29):15978-87. doi: 10.1021/acsami.5b04082. Epub 2015 Jul 14.

Abstract

A series of thiophene-diketopyrrolopyrrole-based quinoidal small molecules (TDPPQ-2-TDPPQ-5) bearing branched alkyl chains with different side-chain lengths and varied branching positions are synthesized. Field-effect transistor (FET) measurement combined with thin-film characterization is utilized to systematically probe the influence of the side-chain length and branching position on the film microstructure, molecular packing, and, hence, charge-transport property. All of these TDPPQ derivatives show air-stable n-channel transporting behavior in spin-coated FET devices, which exhibit no significant decrease in mobility even after being stored in air for 2 months. Most notably, TDPPQ-3 exhibits an outstanding n-channel semiconducting property with electron mobilities up to 0.72 cm(2) V(-1) s(-1), which is an unprecedented value for spin-coated DPP-based n-type semiconducting small molecules. A balance of high crystallinity, satisfactory thickness uniformity and continuity, and strong intermolecular interaction accounts for the superior charge-transport characteristics of TDPPQ-3 films. Our study demonstrates that tuning the length and branching position of alkyl side chains of semiconducting molecules is a powerful strategy for achieving high FET performance.

摘要

合成了一系列基于噻吩-二酮吡咯并吡咯的醌型小分子(TDPPQ-2至TDPPQ-5),它们带有不同侧链长度和不同支化位置的支链烷基。利用场效应晶体管(FET)测量结合薄膜表征,系统地探究侧链长度和支化位置对薄膜微观结构、分子堆积以及电荷传输性能的影响。所有这些TDPPQ衍生物在旋涂FET器件中均表现出空气稳定的n沟道传输行为,即使在空气中储存2个月后,迁移率也没有显著下降。最值得注意的是,TDPPQ-3表现出出色的n沟道半导体性能,电子迁移率高达0.72 cm² V⁻¹ s⁻¹,这对于旋涂的基于DPP的n型半导体小分子来说是一个前所未有的值。高结晶度、令人满意的厚度均匀性和连续性以及强分子间相互作用的平衡导致了TDPPQ-3薄膜优异的电荷传输特性。我们的研究表明,调节半导体分子烷基侧链的长度和支化位置是实现高FET性能的有效策略。

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