Donor impurity related optical and electronic properties of cylindrical GaAs-Al


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
08 Jun 2020
Historique:
received: 09 03 2020
accepted: 11 05 2020
entrez: 10 6 2020
pubmed: 10 6 2020
medline: 10 6 2020
Statut: epublish

Résumé

This article makes a theoretical study of the optical and electronic properties in cylindrical GaAs-Al

Identifiants

pubmed: 32513977
doi: 10.1038/s41598-020-65862-9
pii: 10.1038/s41598-020-65862-9
pmc: PMC7280517
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

9155

Références

Arakawa, Y., Nagamune, Y., Nishioka, M. & Tsukamoto, S. Fabrication and optical properties of GaAs quantum wires and dots by MOCVD selective growth. Semicond. Sci. Technol. 8, 1082–1088 (1993).
doi: 10.1088/0268-1242/8/6/015
Porras-Montenegro, N., Pérez-Merchancano, S. T. & Latgé, A. Binding energies and density of impurity states in spherical GaAs-(Ga,Al)As quantum dots. J. Appl. Phys. 74, 7624–7626 (1993).
doi: 10.1063/1.354943
Tanaka, T., Singh, J., Arakawa, Y. & Bhattacharya, P. Near band edge polarization dependence as a probe of structural symmetry in GaAs/AlGaAs quantum dot structures. Appl. Phys. Lett. 62, 756–758 (1993).
doi: 10.1063/1.108569
Arnone, D. D. et al. Magneto-optics and magneto-capacitance studies of voltage-tuneable GaAs/AlGaAs quantum dots. J. Phys.: Condens. Matter 5, L1–L8 (1993).
Sercel, P. C. & Vahala, K. J. Analytical formalism for determining quantum-wire and quantum-dot band structure in the multiband envelope-function approximation. Phys. Rev. B 42, 3690–3710 (1990).
doi: 10.1103/PhysRevB.42.3690
Porras-Montenegro, N. & Pérez-Merchancano, S. T. Hydrogenic impurities in GaAs-(Ga,Al)As quantum dots. Phys. Rev. B 46, 9780–9783 (1992).
doi: 10.1103/PhysRevB.46.9780
Nair, S. V., Ramaniah, L. M. & Rustagi, K. C. Electron states in a quantum dot in an effective-bond-orbital model. Phys. Rev. B 45, 5969–5979 (1992).
doi: 10.1103/PhysRevB.45.5969
Zhou, W. & Coleman, J. J. Semiconductor quantum dots. Curr. Opin. Solid State Mater. Sci. 20, 352–360 (2016).
doi: 10.1016/j.cossms.2016.06.006
Gaponenko, S. V. & Demir, H. V. Applied nanophotonics. Cambridge University Press (United Kingdom, 2019).
Le Goff, S. & Stébé, B. Influence of longitudinal and lateral confinements on excitons in cylindrical quantum dots of semiconductors. Phys. Rev. B 47, 1383–1391 (1993).
doi: 10.1103/PhysRevB.47.1383
Cristea, M., Niculescu, E. C. & Trusca, C. R. Optical non-linearities associated to hydrogenic impurities in InAs/GaAs self-assembled quantum dots under applied electric fields. Philos. Mag. 97, 3343–3360 (2017).
doi: 10.1080/14786435.2017.1381775
Niculescu, E. C., Stan, C., Cristea, M. & Trusca, C. R. Magnetic-field dependence of the impurity states in a dome-shaped quantum dot. Chem. Phys. 493, 32–41 (2017).
doi: 10.1016/j.chemphys.2017.06.004
Jaziri, S. & Bennaceur, R. Excitons in parabolic quantum dots in electric and magnetic fields. Semicond. Sci. Technol. 9, 1775–1780 (1994).
doi: 10.1088/0268-1242/9/10/003
Que, W. Excitons in quantum dots with parabolic confinement. Phys. Rev. B 15, 11036–11041 (1992).
doi: 10.1103/PhysRevB.45.11036
Dogan, U. et al. Exciton states in a quantum dot with parabolic confinement. Int. J. Modern Phys. B 25, 4489–4497 (2011).
doi: 10.1142/S0217979211059279
Nedzinskas, R., Karpus, V., Cechavicius, B., Kavaliauskas, J. & Valusis, G. Electron energy spectrum in cylindrical quantum dots and rods: approximation of separation of variables. Phys. Scripta 90, 065801 (9pp) (2015).
doi: 10.1088/0031-8949/90/6/065801
Sil, N., Daripa, N., Kapoor, A. & Dey, S. K. Perturbation method for calculating impurity binding energy in an inhomogeneous cylindrical quantum dot with dielectric mismatch. Pranama 90, 7 (6pp) (2018).
doi: 10.1007/s12043-018-1565-6
Mal, I., Samajdar, D. P. & Peter, A. J. Theoretical studies on band structure and optical gain of GaInAsN/GaAs/GaAs cylindrical quantum dot. Superlattice Microst. 119, 103–113 (2018).
doi: 10.1016/j.spmi.2018.04.043
Duque, C. A., Morales, A. L., Montes, A. & Porras-Montenegro, N. Effects of applied electric fields on the infrared transitions between hydrogenic states in GaAs low-dimensional systems. Phys. Rev. B 55, 10721–10728 (1997).
doi: 10.1103/PhysRevB.55.10721
Duque, C. A., Montes, A., Morales, A. L. & Porras-Montenegro, N. Effects of an applied electric field on the binding energy of shallow donor impurities in GaAs low-dimensional systems. J. Phys.: Condens. Matter 9, 5977–5987 (1997).
Duque, C. A. & Porras-Montenegro, N. Impurity excited states in GaAs low dimensional systems under applied electric fields. Braz. J. Phys. 27A, 206–210 (1997).
Duque, C. M., Barseghyan, M. G. & Duque, C. A. Donor impurity in vertically-coupled quantum-dots under hydrostatic pressure and applied electric field. Eur. Phys. J. B 73, 309–319 (2010).
doi: 10.1140/epjb/e2009-00433-7
Duque, C. M., Mora-Ramos, M. E. & Duque, C. A. Effects of hydrostatic pressure and electric field on the nonlinear optical rectification of strongly confined electron-hole pairs in GaAs quantum dots. Physica E 43, 1002–1006 (2011).
doi: 10.1016/j.physe.2010.12.001
Duque, C. M., Mora-Ramos, M. E. & Duque, C. A. Properties of second and third harmonics generation in a quantum disc with inverse square potential. A modeling for nonlinear optical responses of a quantum ring. J. Lumin. 138, 53–60 (2013).
doi: 10.1016/j.jlumin.2013.01.032
Baghdasaryan, D. A., Hakobyan, E. S., Hayrapetyan, D. B., Sarkisyan, H. A. & Kazaryan, E. M. Nonlinear Optical Properties of Cylindrical Quantum Dot with Kratzer Confining Potential. J. Contemp. Phys.-Arme.+ 54, 46–56 (2018).
doi: 10.3103/S1068337219010067
Behroozian, B. & Askari, H. R. Kerr nonlinearity and nonlinear absorption coefficient in a four-level M-model cylindrical quantum dot under the phenomenon of electromagnetically induced transparency. Laser Phys. 28, 075401 (11pp) (2018).
doi: 10.1088/1555-6611/aab388
Hayrapetyan, D. B., Kazaryan, E. M., Kotanjyan, T. V. & Tevosyan, H. K. Light absorption of cylindrical quantum dot with Morse potential in the presence of parallel electrical and magnetic fields. Proc. of SPIE 9519, 951919 (8pp) (2015).
Naifar, A., Zeiri, N., Nasrallah, S. A. B. & Said, M. Theoretical study on third nonlinear optical susceptibility in In
doi: 10.1088/1402-4896/ab2354
Portacio, A. A., Rodrguez, B. A. & Villamil, P. Non-linear optical response of an impurity in a cylindrical quantum dot under the action of a magnetic field. Physica B 511, 68–73 (2017).
doi: 10.1016/j.physb.2017.02.008
Portacio, A. A., Rodrguez, B. A. & Villamil, P. Influence of the position of a donor impurity on the second-order nonlinear optical susceptibility in a cylindrical quantum dot. Superlattice Microst. 113, 550–557 (2018).
doi: 10.1016/j.spmi.2017.11.041
Safarpour, G., Izadi, M. A., Novzari, M. & Nikman, E. External electric field effect on the nonlinear optical properties of a laser dressed donor impurity in GaAs spherical quantum dot confined at the center of a Ga
Safarpour, G., Novzari, M., Izadi, M. A. & Yazdanpanahi, S. The linear and nonlinear optical properties of an off-center hydrogenic donor impurity in nanowire superlattices: Comparison between arrays of spherical and cylindrical quantum dots. Physica E 66, 148–156 (2015).
doi: 10.1016/j.physe.2014.10.015
Solaimani, M., Lavaei, L. & Aleomraninejad, S. M. A. Optical rectification coefficients of cylindrical quantum dots: Rashba spin-orbit interaction effects. JOSA B 3, 1989–1993 (2017).
doi: 10.1364/JOSAB.34.001989
Edrissi, S. J. et al. Pressure effect on the diamagnetic susceptibility of donor in HgS and GaAs cylindrical quantum dot. J. Nanophotonics 13, 026015 (2019).
Sari, H., Ungan, F., Sakiroglu, S., Yesilgul, U. & Sokmen, I. Hydrogenic donor impurities in δ-doped cylindrical quantum dots under intense laser field. Laser Phys. 29, 056001 (7pp) (2019).
doi: 10.1088/1555-6611/ab0a64
Askari, H. R. & Moezzi, M. Effect of light polarization on the electromagnetically induced transparency and birefringence in a cylindrical quantum dot with spin–orbit interaction. Superlattice Microst. 71, 82–92 (2014).
doi: 10.1016/j.spmi.2014.03.033
Askari, H. R. & Moezzi, M. The generation of the double windows of EIT inW-type 4-level cylindrical quantum dot. Optik 126, 4612–4620 (2015).
doi: 10.1016/j.ijleo.2015.08.053
Gambhir, M., Gumber, S., Jha, P. K. & Mohan, M. Dependence of electromagnetically induced transparency on pressure and temperature in a quantum dot with flat cylindrical geometry. Superlattice Microst. 71, 147–161 (2014).
doi: 10.1016/j.spmi.2014.03.026
Mirzaei, M., Askari, H. R. & Raki, Z. Group velocity of light in V and Λ-types cylindrical quantum dots with electromagnetically induced transparency. Superlattice Microst. 74, 61–69 (2014).
doi: 10.1016/j.spmi.2014.06.011
Sahebi, E., Askari, H. R. & Behroozian, B. Triple transparency windows in C-four level cylindrical quantum dot. Optik 185, 339–350 (2019).
doi: 10.1016/j.ijleo.2019.03.152
Tiotsop, M. et al. Polaron in an Asymmetric Cylindrical Quantum Dot Qubit under an Electromagnetic Field. Iran J. Sci. Technol. Trans. Sci. 42, 933–939 (2016).
doi: 10.1007/s40995-016-0138-0
Vartanian, A. L., Vardanyan, L. A. & Kazaryan, E. M. Effect of electric and magnetic fields on the binding energy of a Coulomb impurity bound polaron in a cylindrical quantum dot. Phys. Stat. Sol. (B) 245, 123–131 (2008).
doi: 10.1002/pssb.200743266
Khordad, R., Sadeghzadeh, M. A. & Mohamadian Jahan-Abad, A. Effect of Magnetic Field on Internal Energy and Entropy of a Parabolic Cylindrical Quantum Dot. Commun. Theor. Phys. 59, 655–660 (2013).
doi: 10.1088/0253-6102/59/5/22
Khordad, R., Sadeghzadeh, M. A. & Mohamadian Jahan-Abad, A. Specific heat of a parabolic cylindrical quantum dot in the presence of magnetic field. Superlattice Microst. 58, 11–19 (2013).
doi: 10.1016/j.spmi.2013.02.005
Gumber, S., Kumar, M., Gambhir, M., Mohan, M. & Jha, P. K. Thermal and magnetic properties of cylindrical quantum dot with asymmetric confinement. Can. J. Phys. 93, 1–5 (2015).
doi: 10.1139/cjp-2014-0688
El Hadi, M., El Moussaouy, A. & Nougaouia, A. External electric field effect on exciton binding energy in GaAs/GaAlAs cylindrical quantum dots with asymmetric axial potential. Mater. Today-Proc. 13, 795–802 (2019).
doi: 10.1016/j.matpr.2019.04.042
El-Yadri, M. et al. Fundamental exciton transitions in SiO
doi: 10.1063/1.5047057
Wang, S., Wei, G. & Yi, G. Binding energies of hydrogenic impurities on-center and off-center in cylindrical quantum dots under electric and magnetic fields. Int. J. Mod. Phys. B 24, 4293–4304 (2010).
doi: 10.1142/S0217979210055937
Zeng, Z., Garoufalis, C. S. & Baskoutas, S. Combination effects of tilted electric and magnetic fields on donor binding energy in a GaAs/AlGaAs cylindrical quantum dot. J. Phys. D: Appl. Phys. 45, 235102 (9pp) (2013).
COMSOL Multiphysics, v. 5.4. COMSOL AB, Stockholm, Sweden.
COMSOL Multiphysics Reference Guide, Stockholm, Sweden (May 2012).
COMSOL Multiphysics Users Guide, Stockholm, Sweden (May 2012).
Baghramyan, H. M., Barseghyan, M. G., Kirakosyan, A. A., Restrepo, R. L. & Duque, C. A. Linear and nonlinear optical absorption coefficients in GaAs/Ga
doi: 10.1016/j.jlumin.2012.07.024
Yesilgul, U. et al. Effect of intense high-frequency laser field on the linear and nonlinear intersubband optical absorption coefficients and refractive index changes in a parabolic quantum well under the applied electric field. J. Lumin. 145, 379–386 (2014).
doi: 10.1016/j.jlumin.2013.07.062
Kasapoglu, E. et al. The effects of the electric and magnetic fields on the nonlinear optical properties in the step-like asymmetric quantum well. Physica E 61, 107–110 (2014).
doi: 10.1016/j.physe.2014.03.024

Auteurs

Christian Heyn (C)

Center for Hybrid Nanostructures (CHyN), University of Hamburg, Luruper Chaussee 149, 22761, Hamburg, Germany.

C A Duque (CA)

Grupo de Materia Condensada-UdeA, Instituto de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, Colombia. carlos.duque1@udea.edu.co.

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