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芴并12元杂芳烃中电荷传输性质的区域异构控制

Regioisomeric Control of Charge Transport Properties in Fluoranthene-Fused 12-Ring Heteroarenes.

作者信息

Yu Xinyu, Tsai Chu-Yen, Chu Yu-Wei, Chueh Chu-Chen, Li Zhong'an

机构信息

Hubei Key Laboratory of Material Chemistry and Service Failure, Key Laboratory for Material Chemistry of Energy Conversion and Storage, Ministry of Education, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan 430074, P. R. China.

Department of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.

出版信息

JACS Au. 2025 Jun 18;5(7):3483-3490. doi: 10.1021/jacsau.5c00503. eCollection 2025 Jul 28.

Abstract

Heteroarene-based organic semiconductors (OSCs) have emerged as promising material candidates for large-area, flexible electronic and photonic devices due to their favorable π-conjugation systems and tunable optoelectronic properties. However, their development is still hindered by synthetic and design challenges, in particular, the limited access to highly polycyclic heteroarenes with tunable properties and the unexplored effects of topological isomerism. Here, we have successfully synthesized three regioisomeric thienoacenes (-) by fusing a dicyanofluoranthene unit, which have an identical 12-fused ring composition but different molecular topologies with [a] or [c]-fusion and syn or anti-CN substitution. We demonstrate that solution-processable exhibits topology-dependent charge transport properties by fabricating organic field-effect transistors. with [a]-fusion and syn-CN substitution and with [c]-fusion and syn-CN substitution show only typical n-type semiconducting behavior, with electron mobilities of 3.91 × 10 and 1.58 × 10 cm V s, respectively, while with [a]-fusion and anti-CN substitution achieves electron-dominated ambipolar behavior, with an increase in electron mobility (3.45 × 10 cm V s) by 2 orders of magnitude and a hole mobility of 4.31 × 10 cm V s. Therefore, this work establishes that regioisomeric molecular engineering is a powerful tool for manipulating the charge transport properties of heteroarene-based OSCs.

摘要

基于杂芳烃的有机半导体(OSCs)因其良好的π共轭体系和可调节的光电性能,已成为大面积、柔性电子和光子器件中很有前景的材料候选者。然而,它们的发展仍然受到合成和设计方面挑战的阻碍,特别是难以获得具有可调节性能的高度稠环杂芳烃,以及拓扑异构现象的影响尚未得到探索。在此,我们通过融合二氰基芴单元成功合成了三种区域异构体噻吩并苊烯(-),它们具有相同的12个稠环组成,但具有[a]或[c]稠合以及顺式或反式-CN取代的不同分子拓扑结构。我们通过制造有机场效应晶体管证明,可溶液加工的 表现出拓扑依赖性电荷传输特性。具有[a]稠合和顺式-CN取代的 以及具有[c]稠合和顺式-CN取代的 仅表现出典型的n型半导体行为,电子迁移率分别为3.91×10 和1.58×10 cm V s,而具有[a]稠合和反式-CN取代的 实现了电子主导的双极性行为,电子迁移率增加(3.45×10 cm V s)2个数量级,空穴迁移率为4.31×10 cm V s。因此,这项工作表明区域异构体分子工程是操纵基于杂芳烃的OSCs电荷传输特性的有力工具。

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