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Published in: Optical and Quantum Electronics 10/2020

01-10-2020

Comparison of bound magneto-polaron in circular, elliptical, and triangular quantum dot qubit

Authors: R. Khordad, H. R. Rastegar Sedehi

Published in: Optical and Quantum Electronics | Issue 10/2020

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Abstract

In the present work, we consider an electron which is strongly coupled to the LO-phonon in circular, elliptical, and triangular quantum dots with Coulomb impurity. The eigenenergies and eigenfunctions of the ground and the first-excited states of the electron are obtained under magnetic and electric fields by using the Pekar variational method. We have also obtained the Shannon entropy and the electron probability density. This system can be applied as a two-level qubit. The entropy shows the oscillatory periodic evolution as function of the time due to the form of the confinement. It is seen that entropy has an arrangement periodic behavior for the higher symmetry (circular quantum dot).

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Metadata
Title
Comparison of bound magneto-polaron in circular, elliptical, and triangular quantum dot qubit
Authors
R. Khordad
H. R. Rastegar Sedehi
Publication date
01-10-2020
Publisher
Springer US
Published in
Optical and Quantum Electronics / Issue 10/2020
Print ISSN: 0306-8919
Electronic ISSN: 1572-817X
DOI
https://doi.org/10.1007/s11082-020-02531-1

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