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Organic semiconductors: A theoretical characterization of the basic parameters governing charge transport

机译:有机半导体:控制电荷传输的基本参数的理论表征

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摘要

Organic semiconductors based on π-conjugated oligomers and polymers constitute the active elements in new generations of plastic (opto)electronic devices. The performance of these devices depends largely on the efficiency of the charge-transport processes; at the microscopic level, one of the major parameters governing the transport properties is the amplitude of the electronic transfer integrals between adjacent oligomer or polymer chains. Here, quantum-chemical calculations are performed on model systems to address the way transfer integrals between adjacent chains are affected by the nature and relative positions of the interacting units. Compounds under investigation include oligothienylenes, hexabenzocoronene, oligoacenes, and perylene. It is shown that the amplitude of the transfer integrals is extremely sensitive to the molecular packing. Interestingly, in contrast to conventional wisdom, specific arrangements can lead to electron mobilities that are larger than hole mobilities, which is, for instance, the case of perylene.
机译:基于π共轭低聚物和聚合物的有机半导体构成了新一代塑料(光电)电子设备中的活性元素。这些设备的性能在很大程度上取决于电荷传输过程的效率。在微观水平上,控制传输性能的主要参数之一是相邻低聚物或聚合物链之间电子转移积分的幅度。在这里,在模型系统上执行量子化学计算,以解决相邻链之间的转移积分受相互作用单元的性质和相对位置影响的方式。所研究的化合物包括低聚噻吩基,六苯并并戊二烯,低聚并苯和per。结果表明,传递积分的幅度对分子堆积极为敏感。有趣的是,与常规观点相反,特定的布置可导致电子迁移率大于空穴迁移率,例如per的情况。

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