激光场对三种不同材料双方量子阱中杂质结合能和自极化的影响

IF 1.6 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
D. Eksi, A. I. Mese, E. Cicek, S. G. Ozkapi, B. Ozkapi, I. Erdogan
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引用次数: 0

摘要

在有效质量近似下,我们研究了由三种不同材料制成的双平方量子阱中杂质的结合能和自极化随阱宽、激光场和杂质位置的变化。子带能量采用有限差分法计算,杂质能量采用变分法计算。本文首次详细研究了激光场作用下三种不同材料双方量子阱的结合能和自极化。在双量子阱中,材料选择对结合能和自极化的计算起着重要的作用。研究激光场作用下三种不同材料双方量子阱的结合能和自极化,有助于提高对低维结构性质的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser field effect on binding energy and self-polarization of an impurity in a double square quantum well made of three different materials

In this study, we investigate the variation of binding energy and self-polarization of an impurity in double square quantum wells made of three different materials, depending on the well width, laser field, and impurity position, under effective mass approximation. The subband energies are obtained by the finite difference method, and the variational method calculates the impurity energies. The binding energy and self-polarization under the effect of a laser field in a double square quantum well made of three different materials are examined in detail for the first time in this study. In double-quantum wells, it has been observed that material selection plays an important role in the calculation of binding energy and self-polarization. Studying the binding energy and self-polarization in a double square quantum well with three different materials under the effect of a laser field will enhance understanding of low-dimensional structure properties.

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来源期刊
Indian Journal of Physics
Indian Journal of Physics 物理-物理:综合
CiteScore
3.40
自引率
10.00%
发文量
275
审稿时长
3-8 weeks
期刊介绍: Indian Journal of Physics is a monthly research journal in English published by the Indian Association for the Cultivation of Sciences in collaboration with the Indian Physical Society. The journal publishes refereed papers covering current research in Physics in the following category: Astrophysics, Atmospheric and Space physics; Atomic & Molecular Physics; Biophysics; Condensed Matter & Materials Physics; General & Interdisciplinary Physics; Nonlinear dynamics & Complex Systems; Nuclear Physics; Optics and Spectroscopy; Particle Physics; Plasma Physics; Relativity & Cosmology; Statistical Physics.
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