Impact of Nonresonant Intense Laser and Electric Fields on a Low-Dimensional CdTe/CdSe Type-II Cone.

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Title: Impact of Nonresonant Intense Laser and Electric Fields on a Low-Dimensional CdTe/CdSe Type-II Cone.
Authors: Donado, Fredy Amador1,2 (AUTHOR), Almanza, Fernando Guerrero1,2 (AUTHOR), Viña, Camilo Frías1,3 (AUTHOR), Vinasco, Juan Alejandro3,4 (AUTHOR), Sierra-Ortega, J.1,5 (AUTHOR), Escorcia-Salas, Gene Elizabeth1,6 (AUTHOR), Hahn, R. V. H.4,7 (AUTHOR), Mora-Ramos, M. E.5,8 (AUTHOR), Mommadi, O.6,9 (AUTHOR), Moussaouy, A. El7,10 (AUTHOR), Boussetta, R.1,8 (AUTHOR), Duque, D.2,9 (AUTHOR), Morales, A. L.3,10 (AUTHOR), Uran-Parra, S.4,10 (AUTHOR), Duque, C. A.5,10 (AUTHOR) carlos.duque1@udea.edu.co
Source: Nanomaterials (2079-4991). Aug2025, Vol. 15 Issue 15, p1208. 21p.
Subjects: Electric fields, Quantum dot devices, Heterostructures, Optoelectronics, Cadmium selenide, Schroedinger, Erwin, 1887-1961, Laser industry
Abstract: In this work, a theoretical study on the combined effects of an external electric field and a nonresonant intense laser field on the electronic properties of a quantum dot with a truncated cone shape is presented. This quantum dot was made from a type-II CdTe/CdSe heterostructure (core/shell). Using the effective mass approximation with parabolic bands and the finite element method, the Schrödinger equation was solved to analyze the confined states of electron, hole, and exciton. This study demonstrates the potential of combining nonresonant intense laser and electric fields to control confinement properties in semiconductor nanodevices, with potential applications in optoelectronics and quantum mechanics-related technologies. [ABSTRACT FROM AUTHOR]
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Abstract:In this work, a theoretical study on the combined effects of an external electric field and a nonresonant intense laser field on the electronic properties of a quantum dot with a truncated cone shape is presented. This quantum dot was made from a type-II CdTe/CdSe heterostructure (core/shell). Using the effective mass approximation with parabolic bands and the finite element method, the Schrödinger equation was solved to analyze the confined states of electron, hole, and exciton. This study demonstrates the potential of combining nonresonant intense laser and electric fields to control confinement properties in semiconductor nanodevices, with potential applications in optoelectronics and quantum mechanics-related technologies. [ABSTRACT FROM AUTHOR]
ISSN:20794991
DOI:10.3390/nano15151208