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首页> 外文期刊>The European physical journal, D. Atomic, molecular, and optical physics >Theoretical studies on the effect of benzene and thiophene groups on the charge transport properties of Isoindigo and its derivatives
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Theoretical studies on the effect of benzene and thiophene groups on the charge transport properties of Isoindigo and its derivatives

机译:苯和噻吩基对异吲哚和衍生物电荷运输性能影响的理论研究

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摘要

In this work, the charge transport properties of Isoindigo (II) and its derivatives which have the same hexyl chain were theoretically investigated by the Marcus-Hush theory combined with density functional theory (DFT). Here we demonstrate that the changes of benzene and thiophene groups in molecular structure have an important influence on the charge transport properties of organic semiconductor. The benzene rings of II are replaced by thiophenes to form the thienoisoindigo (TII), and the addition of benzene rings to the TII form the benzothienoisoindigo (BTII). The results show that benzene rings and thiophenes change the chemical structure of crystal molecules, which lead to different molecule stacking, thus, the length of hydrogen bond was changed. A shorter intermolecular hydrogen bond lead to tighter molecular stacking, which reduces the center-to-center distance and enhances the ability of charge transfer. At the same time, we theoretically demonstrated that II and BTII are the ambipolar organic semiconductor. BTII has better carrier mobility. The hole mobility far greater than electron mobility in TII, which is p-type organic semiconductor. Among all hopping path, we find that the distance of face-to-face stacking in II is the shortest and the electron-transport electronic coupling V-e is the largest, but II has not a largest anisotropic mobility, because the reorganization energy has a greater influence on the mobility than the electronic coupling. This work is helpful for designing ambipolar organic semiconductor materials with higher charge transport properties by introducing benzene ring and thiophene.
机译:在这项工作中,由Marcus-Hush理论与密度泛函理论(DFT)相结合理论上研究了异吲哚(II)的电荷传输性质及其具有相同己基链的衍生物。在这里,我们证明了分子结构中苯和噻吩基的变化对有机半导体的电荷传输性能具有重要影响。 II的苯环由噻吩代替以形成噻吩(TII),并将苯环加入TII形成苯并噻吩诺氏醛(BTII)。结果表明,苯环和噻吩并改变了晶体分子的化学结构,这导致不同的分子堆叠,因此,改变了氢键的长度。较短的分子间氢键导致微小的分子堆叠,这减少了中心到中心距离并增强了电荷转移的能力。同时,理论上证明了II和BTII是Ambipolar有机半导体。 BTII具有更好的载流动性。孔迁移率远远大于TII中的电子迁移率,即P型有机半导体。在所有跳跃路径中,我们发现II中的面对面堆叠的距离是最短,电子传输电子耦合VE是最大的,但II没有最大的各向异性移动性,因为重组能量具有更大的对移动性的影响而不是电子耦合。这项工作有助于通过引入苯环和噻吩设计具有更高电荷传输性能的Amipolar有机半导体材料。

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