Effective charge-spin models for quantum dots

John H. Jefferson and Wolfgang Häusler
Phys. Rev. B 54, 4936 – Published 15 August 1996
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Abstract

It is shown that at low densities, quantum dots with few electrons may be mapped onto effective charge-spin models for the low-energy eigenstates. This is justified by defining a lattice model based on a many-electron pocket-state basis in which electrons are localized near their classical ground-state positions. The equivalence to a single-band Hubbard model is then established leading to a charge-spin (t-J-V) model which for most geometries reduces to a spin (Heisenberg) model. The method is refined to include processes which involve cyclic rotations of a ‘‘ring’’ of neighboring electrons. This is achieved by introducing intermediate lattice points and the importance of ring processes relative to pair-exchange processes is investigated using high-order degenerate perturbation theory and the WKB approximation. The energy spectra are computed from the effective models for specific cases and compared with exact results and other approximation methods. © 1996 The American Physical Society.

  • Received 8 March 1996

DOI:https://doi.org/10.1103/PhysRevB.54.4936

©1996 American Physical Society

Authors & Affiliations

John H. Jefferson

  • Defence Research Agency, Electronics Sector, St. Andrews Road, Malvern, Worcestershire WR14 3PS, United Kingdom

Wolfgang Häusler

  • I. Institut für Theoretische Physik, Jungiusstrasse 9, 20355 Hamburg, Federal Republic of Germany

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Issue

Vol. 54, Iss. 7 — 15 August 1996

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