Self-consistent analysis of single-electron charging effects in quantum-dot nanostructures

Dejan Jovanovic and Jean-Pierre Leburton
Phys. Rev. B 49, 7474 – Published 15 March 1994
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Abstract

We perform a numerical self-consistent simulation of single-electron charging effects in an experimentally fabricated quantum-dot nanostructure. We use an iterative approach based on an extraction-orthogonalization method for solving the stationary Schrödinger equation. All relevant quantized regions in the structure are incorporated along with a numerical treatment of the Coulomb blockade and exchange correlation. Transport properties of the structure are evaluated in the adiabatic approximation using an interacting form of the Landauer formula. The theoretically calculated conductance data exhibit good agreement with experiment with respect to peak periodicity but show a strong discrepancy with regard to peak amplitude. This suggests that a high-order effect such as interface disorder may play a large role in determining electronic transmission through tunnel barriers.

  • Received 30 July 1993

DOI:https://doi.org/10.1103/PhysRevB.49.7474

©1994 American Physical Society

Authors & Affiliations

Dejan Jovanovic and Jean-Pierre Leburton

  • Beckman Institute for Advanced Science and Technology, University of Illinois, Urbana, Illinois 61801

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Vol. 49, Iss. 11 — 15 March 1994

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