Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10495/38955
Título : Spin–Orbit and Zeeman Effects on the Electronic Properties of Single Quantum Rings: Applied Magnetic Field and Topological Defects
Autor : León González, José Carlos
Toscano Negrette, Rafael Guillermo
Morales Aramburo, Álvaro Luis
Vinasco Suárez, Juan. Alejandro
Yücel, M. B.
Sari, H.
Kasapoglu, E.
Sakiroglu, S.
Mora Ramos, Miguel Eduardo
Restrepo Arango, Ricardo León
Duque Echeverri, Carlos Alberto
metadata.dc.subject.*: Topological defects (Physics)
Spin–orbit interaction
Zeeman splitting
Circularly polarized light
Optical absorption coefficient
http://id.loc.gov/authorities/subjects/sh2004000585
Fecha de publicación : 2023
Editorial : MDPI
Citación : León-González JC, Toscano-Negrette RG, Morales AL, Vinasco JA, Yücel MB, Sari H, Kasapoglu E, Sakiroglu S, Mora-Ramos ME, Restrepo RL, et al. Spin–Orbit and Zeeman Effects on the Electronic Properties of Single Quantum Rings: Applied Magnetic Field and Topological Defects. Nanomaterials. 2023; 13(9):1461. https://doi.org/10.3390/nano13091461
Resumen : ABSTRACT: Within the framework of effective mass theory, we investigate the effects of spin–orbit interaction (SOI) and Zeeman splitting on the electronic properties of an electron confined in GaAs single quantum rings. Energies and envelope wavefunctions in the system are determined by solving the Schrödinger equation via the finite element method. First, we consider an inversely quadratic model potential to describe electron confining profiles in a single quantum ring. The study also analyzes the influence of applied electric and magnetic fields. Solutions for eigenstates are then used to evaluate the linear inter-state light absorption coefficient through the corresponding resonant transition energies and electric dipole matrix moment elements, assuming circular polarization for the incident radiation. Results show that both SOI effects and Zeeman splitting reduce the absorption intensity for the considered transitions compared to the case when these interactions are absent. In addition, the magnitude and position of the resonant peaks have non-monotonic behavior with external magnetic fields. Secondly, we investigate the electronic and optical properties of the electron confined in the quantum ring with a topological defect in the structure; the results show that the crossings in the energy curves as a function of the magnetic field are eliminated, and, therefore, an improvement in transition energies occurs. In addition, the dipole matrix moments present a non-oscillatory behavior compared to the case when a topological defect is not considered.
metadata.dc.identifier.eissn: 2079-4991
metadata.dc.identifier.doi: 10.3390/nano13091461
Aparece en las colecciones: Artículos de Revista en Ciencias Exactas y Naturales

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