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Orbital Views of the Electron Transport in Molecular Devices

机译:分子器件中电子传输的轨道视图

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Extended π-conjugated molecules are interesting materials that have been studied theoretically and experimentally with applications to conducting nanowire, memory, and diode in mind. Chemical understanding of electron transport properties in molecular junctions, in which two electrodes have weak contact with a π-conjugated molecule, is presented in terms of the orbital concept. The phase and amplitude of the HOMO and LUMO of π-conjugated molecules determine essential properties of the electron transport in them. The derived rule allows us to predict single molecules' essential transport properties, which significantly depend on the type of connection between a molecule and electrodes. Qualitative predictions based on frontier orbital analysis about the site-dependent electron transport in naphthalene, phenanthrene, and anthracene are compared with density functional theory calculations for the molecular junctions of their dithiolate derivatives, in which two gold electrodes have strong contact with a molecule through two Au-S bonds.
机译:扩展的π共轭分子是有趣的材料,已经在理论上和实验上进行了研究,并考虑到了导电纳米线,存储器和二极管的应用。从轨道概念的角度出发,对其中两个电极与π共轭分子的弱接触的分子接合处的电子传输性质进行了化学理解。 π共轭分子的HOMO和LUMO的相位和幅度决定了其中电子传输的基本特性。导出的规则使我们能够预测单个分子的基本传输特性,该特性很大程度上取决于分子与电极之间的连接类型。将基于前沿轨道分析的萘,菲和蒽中依赖位电子传输的定性预测与密度泛函理论计算得出的二硫醇衍生物的分子结进行了比较,其中两个金电极通过两个分子与一个分子发生强接触金-硫键。

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