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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Structures and charge transport properties of 'selenosulflower' and its selenium analogue 'selflower': computer-aided design of high-performance ambipolar organic semiconductors
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Structures and charge transport properties of 'selenosulflower' and its selenium analogue 'selflower': computer-aided design of high-performance ambipolar organic semiconductors

机译:“ selenosulflower”及其硒类似物“ selflower”的结构和电荷传输性质:高性能双极性有机半导体的计算机辅助设计

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摘要

A novel crystal structure of octaseleno[8]circulene (C16Se8, we named it "selflower") was predicted on the basis of a sym-tetraselenatetrathio[8]circulene crystal (C16S4Se4, selenosulflower). The charge transport properties of selenosulflower and its selenium analogue of selflower as potential ambipolar materials were investigated by the density functional theory (DFT) coupled with the incoherent charge-hopping model. Insights into their geometric and electronic structures, frontier molecular orbitals, reorganization energies and transfer integrals, anisotropic mobilities as well as band structures of the two novel materials are provided in detail. The gap of the frontier molecular orbitals decreases when all sulfur atoms of C16S4Se4 are substituted by selenium, which improves the charge transfer efficiency. The predicted hole and electron mobilities of C16Se8 are 1.03 and 1.26 cm(2) V-1 s(-1), respectively. C16S4Se4 has a hole mobility of 0.49 cm(2) V-1 s(-1) and an electron mobility of 0.74 cm(2) V-1 s(-1). Both circulenes exhibit electron-dominated ambipolar performance. The small reorganization energy and larger transfer integral originating from the face to face pi-pi stacking lead to large charge mobility for the novel compound C16Se8. From the viewpoint of transfer integral, the electron coupling among the dominant hopping pathways indicates that the charge transport processes take place in the parallel dimers with p-p interaction. The two materials exhibit a remarkable angular dependence of mobilities and anisotropic behaviors. The newly designed "selflower" C16Se8 is a novel organic semiconductor and worth synthesizing.
机译:根据对-四硒代四硫代[8] circulene晶体(C16S4Se4,selenosulflower),预测了一种新的八聚烯丙基[8] circulene(C16Se8,我们称其为“ selflower”)晶体结构。通过密度泛函理论(DFT)结合非相干电荷跳跃模型,研究了硒代磺草及其硒类似物硒的硒的电荷输运性质。详细介绍了它们的几何和电子结构,前沿分子轨道,重组能和转移积分,各向异性迁移率以及两种新型材料的能带结构。当C 16 S 4 Se 4的所有硫原子都被硒取代时,前沿分子轨道的间隙减小,从而提高了电荷转移效率。 C16Se8的预测空穴迁移率和电子迁移率分别为1.03和1.26 cm(2)V-1 s(-1)。 C16S4Se4具有0.49 cm(2)V-1 s(-1)的空穴迁移率和0.74 cm(2)V-1 s(-1)的电子迁移率。两个环都表现出电子主导的双极性能。来自面对面的pi-pi堆叠的较小的重组能量和较大的转移积分导致新型化合物C16Se8的大电荷迁移率。从转移积分的角度来看,主要的跳跃路径之间的电子耦合表明电荷传输过程发生在具有p-p相互作用的平行二聚体中。两种材料表现出显着的迁移率和各向异性行为的角度依赖性。新设计的“ selflower” C16Se8是一种新颖的有机半导体,值得合成。

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