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Single molecule electron transport junctions: Charging and geometric effects on conductance

机译:单分子电子传输结:对电导的充电和几何效应

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A p-benzenedithiolate (BDT) molecule covalently bonded between two gold electrodes has become one of the model systems utilized for investigating molecular transport junctions. The plethora of papers published on the BDT system has led to varying conclusions with respect to both the mechanism and the magnitude of transport. Conductance variations have been attributed to difficulty in calculating charge transfer to the molecule, inability to locate the Fermi energy accurately, geometric dispersion, and stochastic switching. Here we compare results obtained using two transport codes, TRANSIESTA-C and HUCKEL-IV, to show that upon Au-S bond lengthening, the calculated low bias conductance initially increases by up to a factor of 30. This increase in highest occupied molecular orbital (HOMO) mediated conductance is attributed to charging of the terminal sulfur atom and a corresponding decrease in the energy gap between the Fermi level and the HOMO. Addition of a single Au atom to each terminal of the extended BDT molecule is shown to add four molecular states near the Fermi energy, which may explain the varying results reported in the literature. (c) 2006 American Institute of Physics.
机译:在两个金电极之间共价键合的对苯二硫醚(BDT)分子已成为用于研究分子转运结的模型系统之一。关于BDT系统的大量论文已经就运输的机理和强度提出了不同的结论。电导率变化归因于难以计算向分子的电荷转移,无法精确定位费米能量,几何色散和随机切换。在这里,我们比较使用两种传输代码TRANSIESTA-C和HUCKEL-IV获得的结果,以表明在Au-S键加长后,计算出的低偏置电导率最初最多增加30倍。这种增加是在最高占据分子轨道上(HOMO)介导的电导归因于末端硫原子的充电以及费米能级和HOMO之间的能隙相应减少。已显示在扩展的BDT分子的每个末端添加一个Au原子会在费米能量附近添加四个分子态,这可能解释了文献中报道的不同结果。 (c)2006年美国物理研究所。

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