共晶
化学
双极扩散
有机半导体
结晶学
离域电子
合成子
堆积
取代基
有机电子学
晶体工程
苝
电子迁移率
半导体
科罗尼
芳香性
立体化学
晶体结构
电子
光电子学
分子
超分子化学
晶体管
有机化学
材料科学
氢键
量子力学
电压
物理
作者
Guangpeng Gao,Meng Chen,Josiah Roberts,Meng Feng,Chengyi Xiao,Guowei Zhang,Sean Parkin,Chad Risko,Lei Zhang
摘要
Fullerene fragments, referred to as buckybowls, are garnering interest due to their distinctive molecular shapes and optoelectronic properties. Here, we report the synthesis and characterization of a novel C70 subunit, diindeno[4,3,2,1-fghi:4′,3′,2′,1′-opqr]perylene, that is substituted with either triethylsilyl(TES)-ethynyl or 2,4,6-triisopropylphenyl groups at the meta-positions. The resulting compounds (1 and 2) display a bowl-to-bowl inversion at room temperature. Notably, the substituent groups on the meta-positions alter both the geometric and the electronic properties as well as the crystal packing of the buckybowls. In contrast to the 2,4,6-triisopropylphenyl groups in 2, the TES-ethynyl groups in 1 lead to enhanced bond length alternation, resulting in weaker aromaticity of the six-membered rings of the buckybowl skeleton. 1 forms one-dimensional (1D) concave-in-convex stacking columns, and when 1 is blended with C70, the buckybowls encapsulate C70 and result in two-dimensional cocrystals. Organic field-effect transistor (OFET) measurements demonstrate that 1 displays a hole mobility of 0.31 cm2 V–1 s–1, and the 1-C70 cocrystal exhibits ambipolar transport characteristics with electron and hole mobilities approaching 0.40 and 0.07 cm2 V–1 s–1, respectively. This work demonstrates the potential of buckybowls for the development of organic semiconductors.
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