Elliptical Quantum Rings With Variable Heights and Under Spin-Orbit Interactions
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Date
2023
Journal Title
Journal ISSN
Volume Title
Publisher
MDPI
Open Access Color
GOLD
Green Open Access
Yes
OpenAIRE Downloads
35
OpenAIRE Views
147
Publicly Funded
No
Abstract
We investigate the electronic properties of a semiconductor quantum ring with an elliptical shape and non-uniform height, allowing for distributed quantum-dot-like bulges along its perimeter. The adiabatic approximation and the finite element method are combined to calculate the allowed electron states in the structure under the effective mass approximation, considering the contributions from Rashba and Dresselahaus spin-orbit interactions and the Zeeman effect in the presence of an applied magnetic field. We discuss the features of the calculated spectra for two different ring geometries: a symmetric one with four dot-like bulges, and an asymmetric one with three hilled protuberances. The information about those states allows us to evaluate the linear optical absorption response associated with interlevel transitions between the ground and lowest excited states. This phenomenon takes place at resonant energies of only a few milielectronvolts. It is observed that spin-orbit interactions tend to quench this response under zero-field conditions in the case of symmetric confinement.
Description
Duque, Carlos/0000-0003-3382-2783; Morales, Alvaro L./0000-0002-4004-1726; Mommadi, Omar/0000-0003-2705-4853; Sahin, Mehmet/0000-0002-9419-1711; Restrepo Arango, Ricardo Leon/0000-0002-0359-353X; Sierra Ortega, Jose/0000-0002-0905-3147; Radu, Adrian/0000-0002-2292-2976; Mora-Ramos, Miguel Eduardo/0000-0002-6232-9958
Keywords
2D Quantum Ring, Effective Band Gap, Finite Confinement, Finite Element Method, 2D quantum ring, effective band gap, finite confinement, Physics, QC1-999, finite element method
Turkish CoHE Thesis Center URL
Fields of Science
Citation
WoS Q
Q4
Scopus Q
Q3

OpenCitations Citation Count
2
Source
Condensed Matter
Volume
8
Issue
3
Start Page
82
End Page
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Scopus : 5
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5
checked on Feb 03, 2026
Web of Science™ Citations
3
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Page Views
7
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