Intense Laser Field Effect on the Photo-Ionization Cross-Section of the First Exciton Transition in a Core/Shell Quantum Dot Submitted to an Applied Electric Field

Author:

Pérez Laura M.1ORCID,Aghoutane Noreddine2ORCID,Laroze David2ORCID,Díaz Pablo3ORCID,El-Yadri Mohamed4ORCID,Feddi EL Mustapha45ORCID

Affiliation:

1. Departamento de Física, FACI, Universidad de Tarapacá, Casilla 7D, Arica 1000000, Chile

2. Instituto de Alta Investigación, Universidad de Tarapacá, Casilla 7D, Arica 1000000, Chile

3. Departamento de Ciencias Físicas, Universidad de La Frontera, Casilla 54-D, Temuco 4780000, Chile

4. Group of Optoelectronic of Semiconductors and Nanomaterials, ENSAM, Mohammed V University, Rabat 10100, Morocco

5. Institute of Applied Physics, Mohammed VI Polytechnic University, Ben Guerir 43150, Morocco

Abstract

In the current work, we study the intense laser pulse influences on the behaviors of the first excitonic transition in a core/shell quantum dot submitted to an electric field. Therefore, the exciton binding energy and the mean distance between the correlated electron–hole pair are discussed, considering the electric field and laser strength. Our calculations show that both external fields play significant repulsive effects. Through their effects, they oppose the attractive nature of the Coulomb potential between the correlated pair, which decreases the excitonic binding energy. We also analyze the dissociation process by determining the photo-ionization cross-section (PICS). Our findings show that the peaks of the PICS redshift when the shell thickness b−a increases. For a given core radius, the laser and electric field induce a shift toward the low-energy region for the PICS; this displacement is more pronounced for the laser case. Our study also compares simple quantum dots and core/shell quantum dots to show the effect of the inner radius on the obtained results. Our theoretical results can lead to promising applications of exciton-based devices controlled by sizes and external fields.

Funder

ANID

CEDENNA

FONDECYT

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

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5. Transport spectroscopy of non-equilibrium many-particle spin states in self-assembled quantum dots;Marquardt;Nat. Commun.,2011

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