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Universal zero-bias conductance through a quantum wire side-coupled to a quantum dot

机译:通过量子线侧耦合到量子点的通用零偏电导

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摘要

A numerical renormalization-group study of the conductance through a quantum wire containing noninter-acting electrons side-coupled to a quantum dot is reported. The temperature and the dot-energy dependence of the conductance are examined in the light of a recently derived linear mapping between the temperature-dependent conductance and the universal function describing the conductance for the symmetric Anderson model of a quantum wire with an embedded quantum dot. Two conduction paths, one traversing the wire, the other a bypass through the quantum dot, are identified. A gate potential applied to the quantum wire is shown to control the current through the bypass. When the potential favors transport through the wire, the conductance in the Kondo regime rises from nearly zero at low temperatures to nearly ballistic at high temperatures. When it favors the dot, the pattern is reversed: the conductance decays from nearly ballistic to nearly zero. When comparable currents flow through the two channels, the conductance is nearly temperature independent in the Kondo regime, and Fano antiresonances in the fixed-temperature plots of the conductance as a function of the dot-energy signal interference between them. Throughout the Kondo regime and, at low temperatures, even in the mixed-valence regime, the numerical data are in excellent agreement with the universal mapping.
机译:报道了通过量子线进行电导的数值归一化组研究,该量子线包含侧耦合到量子点的非相互作用电子。根据最近导出的依赖于温度的电导和描述嵌入了量子点的量子线对称安德森模型的电导的通用函数之间的线性映射,检查了电导的温度和点能量的依赖性。确定了两条导电路径,一条穿过导线,另一条穿过量子点。显示了施加到量子线上的栅极电势,以控制通过旁路的电流。当电势有利于通过导线传输时,近藤状态下的电导从低温下的几乎为零上升到高温下的近乎弹道。当它偏向点时,图案将反转:电导率从几乎弹道衰减到几乎为零。当可比较的电流流过这两个通道时,电导在近藤状态下几乎与温度无关,而电导的固定温度曲线中的Fano反谐振是它们之间点能量信号干扰的函数。在整个近藤制度中,并且在低温下,甚至在混合价态中,数值数据也与通用映射非常吻合。

著录项

  • 来源
    《Physical review》 |2009年第23期|235318.1-235318.13|共13页
  • 作者单位

    Departamento de Fisica e Informatica, Instituto de Fisica de Sao Carlos, Universidade de Sao Paulo, 369 Sao Carlos, SP, Brazil Instituto de Fisica, Universidade Federal Fluminense, Niteroi 24210-346, RJ, Brazil;

    Departamento de Fisica, Instituto de Geociencias e Ciencias Exatas, Universidade Estadual Paulista, 13500 Rio Claro, SP, Brazil;

    Departamento de Fisica e Informatica, Instituto de Fisica de Sao Carlos, Universidade de Sao Paulo, 369 Sao Carlos, SP, Brazil;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    quantum dots; scattering mechanisms and kondo effect; coulomb blockade; single-electron tunneling;

    机译:量子点;散射机制和近藤效应;库仑封锁;单电子隧穿;

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