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ELECTRON TRANSPORT THROUGH MOLECULES IN THE KONDO REGIME: THE ROLE OF MOLECULAR VIBRATIONS

机译:通过Kondo制度的分子电子传输:分子振动的作用

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We discuss the electronic transport through molecules in the Kondo regime. We concentrate here on the influence of molecular vibrations. Two types of vibrations are investigated: (i) the breathing internal molecular modes, where the coupling occurs between the molecular deformation and the charge density, and (ii) the oscillations of molecule between the contacts, where the displacement affects the tunneling. The system is described by models which are solved numerically using Schonhammer-Gunnarsson's projection operators and Wilson's numerical renormal-ization group methods. Case (i) is considered within the Anderson-Holstein model. Here the influence of the phonons is mainly to suppress the repulsion between the electrons at the molecular orbital. Case (ii) is described by a two-channel Anderson model with phonon-assisted hybridization. In both cases, the coupling to electrons softens the vibrational mode and in the strong coupling regime makes the displacement unstable to perturbations that break the symmetry of the confining potential. For instance, in case (ii) when the frequency of oscillations decreases below the magnitude of per-turbation breaking the left-right symmetry, the molecule will be abruptly attracted to one of the electrodes. In this regime, the Kondo temperature increases but the conductance through the molecule is suppressed.
机译:我们讨论过在近藤政权分子的电子传输。在这里,我们专注于分子振动的影响。两种类型的振动进行了研究:(i)所述呼吸内部分子模式,其中发生的分子变形和电荷密度之间的耦合,以及(ii)接触,其中,所述位移影响隧道之间分子的振荡。该系统由这些数值求解使用Schonhammer-冈纳森的投影算子和Wilson的数值renormal-化基团的方法的模型描述。案例(i)是安德森 - 荷尔斯泰因模型中考虑。这里的声子的影响,主要是为了抑制电子之间的斥力在分子轨道。情况(ⅱ)是由一个双通道安德森模型与声子辅助杂交说明。在这两种情况下,耦合电子软化振动模式,并在强耦合机制使得位移不稳定给打破限制势的对称性扰动。例如,在情况(ii)当每turbation破左右对称的幅度低于振荡的频率降低时,分子将被突然吸引到电极中的一个。在这个体制中,近藤温度增加,但是通过该分子的电导被抑制。

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