Electric- and magnetic-field-induced evolution of transport windows in a vertical quantum dot

B. Szafran, S. Bednarek, and J. Adamowski
Phys. Rev. B 65, 035316 – Published 21 December 2001; Erratum Phys. Rev. B 66, 199903 (2002)
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Abstract

A theoretical description is presented for the quantum Coulomb blockade observed in a vertical gated quantum dot. We have applied a self-consistent approach to a solution of the Poisson-Schrödinger problem, which takes into account the electrostatics of the entire nanostructure. The conditions under which the Coulomb blockade and the transport windows appear in the current-voltage characteristics of the nanodevice are determined as functions of the external magnetic field and the potentials applied to the electrodes. We have discussed the magnetic-field induced ground-state transformations in the system of electrons confined in the quantum dot and their consequences for the measured characteristics of the nanodevice. The results of the present calculations are in a good agreement with the experimental data.

  • Received 6 August 2001

DOI:https://doi.org/10.1103/PhysRevB.65.035316

©2001 American Physical Society

Erratum

Authors & Affiliations

B. Szafran*, S. Bednarek, and J. Adamowski

  • Faculty of Physics and Nuclear Techniques, University of Mining and Metallurgy (AGH), Kraków, Poland

  • *Email address: bszafran@agh.edu.pl

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Vol. 65, Iss. 3 — 15 January 2002

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