电场作用下激光修饰三同心量子环的电子和光学响应

IF 1.5 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY
D. Bejan, A. Radu, C. Stan
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引用次数: 1

摘要

本文从理论上研究了GaAs/Al0.3Ga0.7As三同心量子环在非谐振强激光和静电场共同作用下的三维结构。利用结构的横截面剖面建立三维模型,该模型对应于不同高度和宽度的三环的实际实验案例。电场和激光场对能级的影响相反,分别使所研究的能级减小或增大。线性或二次斯塔克效应可以在特定的电场值范围内看到,这取决于强激光场诱导的各向异性,对于给定的场取向。观察到的反交叉可以用波函数从一个环到另一个环的离域或内环波函数之间的对称交换来解释。对于由垂直方向的电场和强激光极化产生的最变形的势,通过适当的场操纵可以以可控的方式获得非常大的吸收峰,蓝移,红移或峰值能量和振幅的振荡行为。这有助于太赫兹探测器或太阳能电池的可调性和光学特性的改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electronic and optical responses of laser dressed triple concentric quantum rings in electric field
ABSTRACT In this paper, we theoretically studied a 3D structure of GaAs/Al0.3Ga0.7As triple concentric quantum rings submitted to the combined action of a non-resonant intense laser and a static electric field. The 3D model was built using the cross-sectional profile of the structure that corresponds to a realistic experimental case of triple rings with different heights and widths. The electric field and the laser field have opposite influence on the energy levels, decreasing or increasing all studied levels, respectively. Linear or quadratic Stark effect can be seen in specific ranges of electric field values, depending on the anisotropy induced by the intense laser field, for given fields orientations. The observed anti-crossings are explained by wave-functions delocalisation from one ring to another or by symmetry exchange between the wave-functions of the inner ring. For the most deformed potential created by perpendicular orientation of electric field and intense laser polarisation, very large absorption peaks, blue-shifts, red-shifts or an oscillatory behaviour in peaks energy and amplitude are obtained in a controllable way by proper manipulation of the fields. This can be helpful for the tunability and optical features improvement of THz detectors or solar cells.
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来源期刊
Philosophical Magazine
Philosophical Magazine 工程技术-材料科学:综合
自引率
0.00%
发文量
93
审稿时长
4.7 months
期刊介绍: The Editors of Philosophical Magazine consider for publication contributions describing original experimental and theoretical results, computational simulations and concepts relating to the structure and properties of condensed matter. The submission of papers on novel measurements, phases, phenomena, and new types of material is encouraged.
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