Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer

Magnetotransport in two submicron-sized devices formed on the basis of GaAs/AlGaAs structures has been simulated using nonequilibrium Green functions. The effect of a perpendicular magnetic field on quantum transport in a quasi-one-dimensional quantum dot and in an Aharonov–Bohm inte...

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Main Authors: Olga A. Tkachenko, Dmitry G. Baksheev, Vitaly A. Tkachenko
Format: Article
Language:English
Published: Pensoft Publishers 2020-06-01
Series:Modern Electronic Materials
Online Access:https://moem.pensoft.net/article/58576/download/pdf/
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spelling doaj-d97de1ada39547b0a7c217e21ef375e12021-04-02T13:39:13ZengPensoft PublishersModern Electronic Materials2452-17792020-06-0162596410.3897/j.moem.6.2.5857658576Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometerOlga A. Tkachenko0Dmitry G. Baksheev1Vitaly A. Tkachenko2Rzhanov Institute of Semiconductor Physics, Siberian Branch, Russian Academy of SciencesNovosibirsk State UniversityNovosibirsk State University Magnetotransport in two submicron-sized devices formed on the basis of GaAs/AlGaAs structures has been simulated using nonequilibrium Green functions. The effect of a perpendicular magnetic field on quantum transport in a quasi-one-dimensional quantum dot and in an Aharonov–Bohm interferometer has been analyzed in a single-particle approximation. Magnetic field oscillations of two-terminal conductance of the devices, equilibrium (persistent) current distributions and magnetic moment generated in the devices by persistent currents have been determined using numerical methods. Correlations between the magnetic moment, magnetic field oscillations of conductance and energy resonance in a specific magnetic field have been traced. Sufficiently regular conductance oscillations similar to Aharonov–Bohm ones have been revealed for a quasi-one-dimensional quantum dot at small magnetic fields (0.05–0.4 T). For a ring interferometer the contribution to the total equilibrium current and magnetic moment at a specific energy may change abruptly both in magnitude and in sign as a result of changing magnetic field within one Aharonov–Bohm oscillation. We show that the conductance of an interferometer is determined not by the number of modes propagating in the ring but rather by the effect of triangular quantum dots at the ring entrance that produce a strong reflection. The period of the calculated Aharonov–Bohm oscillations is in agreement with the measurement results for these devices. https://moem.pensoft.net/article/58576/download/pdf/
collection DOAJ
language English
format Article
sources DOAJ
author Olga A. Tkachenko
Dmitry G. Baksheev
Vitaly A. Tkachenko
spellingShingle Olga A. Tkachenko
Dmitry G. Baksheev
Vitaly A. Tkachenko
Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
Modern Electronic Materials
author_facet Olga A. Tkachenko
Dmitry G. Baksheev
Vitaly A. Tkachenko
author_sort Olga A. Tkachenko
title Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
title_short Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
title_full Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
title_fullStr Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
title_full_unstemmed Aharonov–Bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
title_sort aharonov–bohm oscillations and equilibrium current distributions in open quantum dot and in ring interferometer
publisher Pensoft Publishers
series Modern Electronic Materials
issn 2452-1779
publishDate 2020-06-01
description Magnetotransport in two submicron-sized devices formed on the basis of GaAs/AlGaAs structures has been simulated using nonequilibrium Green functions. The effect of a perpendicular magnetic field on quantum transport in a quasi-one-dimensional quantum dot and in an Aharonov–Bohm interferometer has been analyzed in a single-particle approximation. Magnetic field oscillations of two-terminal conductance of the devices, equilibrium (persistent) current distributions and magnetic moment generated in the devices by persistent currents have been determined using numerical methods. Correlations between the magnetic moment, magnetic field oscillations of conductance and energy resonance in a specific magnetic field have been traced. Sufficiently regular conductance oscillations similar to Aharonov–Bohm ones have been revealed for a quasi-one-dimensional quantum dot at small magnetic fields (0.05–0.4 T). For a ring interferometer the contribution to the total equilibrium current and magnetic moment at a specific energy may change abruptly both in magnitude and in sign as a result of changing magnetic field within one Aharonov–Bohm oscillation. We show that the conductance of an interferometer is determined not by the number of modes propagating in the ring but rather by the effect of triangular quantum dots at the ring entrance that produce a strong reflection. The period of the calculated Aharonov–Bohm oscillations is in agreement with the measurement results for these devices.
url https://moem.pensoft.net/article/58576/download/pdf/
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AT dmitrygbaksheev aharonovbohmoscillationsandequilibriumcurrentdistributionsinopenquantumdotandinringinterferometer
AT vitalyatkachenko aharonovbohmoscillationsandequilibriumcurrentdistributionsinopenquantumdotandinringinterferometer
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