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有限限制势、核壳尺寸对圆柱形核/壳/壳量子点中激子和电子-原子性质的影响。

Finite confinement potentials, core and shell size effects on excitonic and electron-atom properties in cylindrical core/shell/shell quantum dots.

作者信息

Hbibi M, Mommadi O, Chouef S, Boussetta R, Belamkadem L, Moussaouy A El, Falyouni F, Duque C M, Vinasco J A, Duque C A

机构信息

OAPM group, Laboratory of Materials, Waves, Energy and Environment, Department of Physics, Faculty of Sciences, University Mohamed I, 60000, Oujda, Morocco.

The Regional Centre for the Professions of Education and Training, Oujda, 60000, Morocco.

出版信息

Sci Rep. 2022 Sep 1;12(1):14854. doi: 10.1038/s41598-022-19118-3.

Abstract

The effects of confinement potentials of the first and second materials, core size and first shell thickness on the confinement of electron, electron-donor atom, and exciton in cylindrical core/shell/shell quantum dot (CSSQD) are studied taking into account the finite confinement potential model. The confinement of charge carriers in CSSQD with two finite confinement potentials models of the barrier materials are studied. Within the effective mass and parabolic band approximation, the 3D time-independent Schrödinger equation has been resolved. To obtain the ground state quasiparticles energies, we have used the variational technique. Our results show that the donor atom and exciton binding energy, as well as the electron energy, strongly depend on the core radius, first shell thickness, confinement potentials of the barrier materials, and their structures (A and B). Moreover, the confinement potential effect of the first material on the energies is more pronounced when their thickness is large and the core radius is small. So, the external potential effect is more significant when the first shell thickness and potential are small. Also, The binding energy of an on-center (off-center) donor atom is greater (weaker) than that of the exciton, whatever the structure of the confinement potential. In addition, the transition from a type-A to a type-B confinement system has been observed. The findings might be used to modify the electronic and excitonic properties in nanomaterials science.

摘要

考虑有限限制势模型,研究了第一和第二种材料的限制势、核尺寸以及第一壳层厚度对圆柱形核/壳/壳量子点(CSSQD)中电子、电子供体原子和激子的限制作用。研究了具有两种势垒材料有限限制势模型的CSSQD中载流子的限制情况。在有效质量和抛物线带近似下,求解了三维与时间无关的薛定谔方程。为了获得基态准粒子能量,我们使用了变分技术。我们的结果表明,供体原子和激子的结合能以及电子能量强烈依赖于核半径、第一壳层厚度、势垒材料的限制势及其结构(A和B)。此外,当第一种材料的厚度较大且核半径较小时,其对能量的限制势效应更为显著。因此,当第一壳层厚度和势较小时,外部势效应更为显著。而且,无论限制势的结构如何,中心(偏心)供体原子的结合能都大于(小于)激子的结合能。此外,还观察到了从A型限制系统到B型限制系统的转变。这些发现可能用于修改纳米材料科学中的电子和激子性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d4c/9437040/d5b2c4a22dec/41598_2022_19118_Fig1_HTML.jpg

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