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On the impact of isomer structure and packing disorder in thienoacene organic semiconductors

机译:噻吩并苯有机半导体中异构体结构和堆积无序的影响

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Many high performing organic semiconductor materials contain heteroaromatic rings in order to control the molecular packing and material electronic properties. Here we use a combination of density functional theory and symmetry-adapted perturbation theory calculations to explore the intermolecular noncovalent interactions, which guide solid-state molecular packing, and electronic couplings in a series of benzodithiophene-based dimer models. A novel concept, termed the disordermer, is introduced to delineate how the reduced molecular symmetry of benzodithiophene, when compared to the more highly symmetric anthracene molecule, can present intermolecular isomerism in the solid state that results in a wide range of available molecular packing arrangements that in turn influence the magnitudes of the electronic couplings. The insight developed through the investigation of these disordermers is demonstrated to hold important implications in the design of new generations of organic semiconductor materials.
机译:许多高性能有机半导体材料包含杂芳族环,以控制分子堆积和材料电子性能。在这里,我们结合使用密度泛函理论和对称适应的扰动理论计算来探索分子间非共价相互作用,该相互作用指导了一系列基于苯并二噻吩的二聚体模型中的固态分子堆积和电子偶联。引入称为无序异构体的新概念来描述与更高度对称的蒽分子相比,降低的苯并二噻吩分子对称性如何在固态下呈现分子间异构现象,从而导致广泛的可用分子堆积排列方式反过来影响电子耦合的大小。通过研究这些无序异构体获得的见解被证明对新一代有机半导体材料的设计具有重要意义。

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