• DocumentCode
    2074101
  • Title

    Electron transport through a biased asymmetric double-dot system in a parallel arrangement between leads

  • Author

    Mourokh, Lev G. ; Kovalev, Vadim M. ; Puller, Vadim I. ; Horing, J.M. ; Smirnov, Anatoly Yu.

  • Author_Institution
    Dept. of Phys. & Eng. Phys., Stevens Inst. of Technol., Hoboken, NJ, USA
  • Volume
    1
  • fYear
    2003
  • fDate
    12-14 Aug. 2003
  • Firstpage
    319
  • Abstract
    We examine the transport properties of a tunnel-coupled asymmetric double-dot structure in a parallel arrangement between leads in the presence of Aharonov-Bohm magnetic flux and an additional bias voltage applied between the dots. We solve the Schrodinger equation for the energy eigenfunctions and eigenvalues of a biased asymmetric double-dot system. The magnetic flux-induced Peierls phase factors experienced by electrons in tunneling from/to the leads to/from double-dot levels are determined and incorporated. Employing the nonequilibrium Green´s function formalism we calculate the lead-to-lead current, taking account of dot-lead tunnel coupling and Coulomb repulsion. We demonstrate that, for appropriate parameter values (such as lead-to-lead bias voltage and equilibrium chemical potential of the leads), the lead-to-lead current oscillates as a function of applied magnetic field, if the dot-to-dot bias compensates the structure asymmetry and only one of the double-dot levels is conductive. We also show that when both levels become conductive, their interference is destructive and the total lead-to-lead current decreases with increasing magnetic field. This decrease is larger for larger dots.
  • Keywords
    Aharonov-Bohm effect; Green´s function methods; Schrodinger equation; eigenvalues and eigenfunctions; interference; magnetic flux; semiconductor quantum dots; tunnelling; Aharonov-Bohm magnetic flux; Coulomb repulsion; Greens function; Schrodinger equation; bias voltage; biased asymmetric double dot; chemical potential; dot lead tunnel coupling; eigenvalues; electron transport; electrons; energy eigenfunctions; interference; magnetic field; magnetic flux induced peierls phase factors; tunneling; Chemicals; Eigenvalues and eigenfunctions; Electrons; Green´s function methods; Magnetic fields; Magnetic flux; Magnetic properties; Magnetic tunneling; Schrodinger equation; Voltage;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nanotechnology, 2003. IEEE-NANO 2003. 2003 Third IEEE Conference on
  • Print_ISBN
    0-7803-7976-4
  • Type

    conf

  • DOI
    10.1109/NANO.2003.1231782
  • Filename
    1231782