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Andreev tunneling through a double quantum-dot system coupled to a ferromagnet and a superconductor: Effects of mean-field electronic correlations

机译:通过与铁磁体和超导体耦合的双量子点系统进行的安德列夫隧穿:平均场电子相关性的影响

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摘要

We study the transport properties of a hybrid nanostructure composed of a ferromagnet, two quantum dots, and a superconductor connected in series. By using the nonequilibrium Green's function approach, we have calculated the electric current, the differential conductance, and the transmittance for energies within the superconductor gap. In this regime, the mechanism of charge transmission is the Andreev reflection, which allows for a control of the current through the ferromagnet polarization. We have also included interdot and intradot interactions, and have analyzed their influence through a mean-field approximation. In the presence of interactions, Coulomb blockade tend to localize the electrons at the double-dot system, leading to an asymmetric pattern for the density of states at the dots, and thus reducing the transmission probability through the device. In particular, for nonzero polarization, the intradot interaction splits the spin degeneracy, reducing the maximum value of the current due to different spin-up and spin-down densities of states. Negative differential conductance appears for some regions of the voltage bias, as a result of the interplay of the Andreev scattering with electronic correlations. By applying a gate voltage at the dots, one can tune the effect, changing the voltage region where this novel phenomenon appears. This mechanism to control the current may be of importance in technological applications.
机译:我们研究了由铁磁体,两个量子点和一个串联的超导体组成的杂化纳米结构的传输特性。通过使用非平衡格林函数方法,我们计算出了电流,微分电导和超导体间隙内能量的透射率。在这种情况下,电荷传输的机制是安德列夫反射,它可以控制通过铁磁极化的电流。我们还包括了点间和点内相互作用,并通过均值场近似分析了它们的影响。在存在相互作用的情况下,库仑阻塞倾向于将电子定位在双点系统上,从而导致点处的状态密度不对称,从而降低了通过器件的传输概率。特别是,对于非零极化,点内交互作用会分裂自旋简并性,由于状态的自旋向上和向下旋转密度不同而减小了电流的最大值。由于安德列夫散射与电子相关的相互作用,在电压偏置的某些区域出现了负差分电导。通过在点上施加栅极电压,可以调整效果,改变出现这种新现象的电压区域。这种控制电流的机制在技术应用中可能很重要。

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  • 作者

    Siqueira, EC; Cabrera, GG;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 eng
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