半抛物加半逆平方量子阱:电磁波存在下的声磁电场

IF 0.9 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Nguyen Thu Huong, Nguyen Quang Bau, Nguyen Quyet Thang, Pham Duc Chinh, Nguyen Dinh Nam, Anh-Tuan Tran
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引用次数: 0

摘要

利用半抛物加半逆平方量子阱(SPPSISQW)结构中电子在外加电磁波作用下的量子动力学方程方法,推导了声磁电场(AME)场的解析表达式。此外,通过数值结果研究了AME场与外界电磁波频率、声波频率\(\omega_{q}\)、温度、磁场等参数的关系。值得注意的是,AME场的共振峰位置不受温度的影响,但随着电磁波频率和磁场的变化而发生明显的位移。高频电磁波显著增强了AME场,引入了新的谐振峰,调制了场的幅度和位置。随着EMW Ω频率的增加,共振峰向更高的磁场值移动。该研究确定了回旋共振现象,其中AME场在特定磁场强度下急剧增加。这种共振随着电磁波频率的变化而变化,表明电子、声子和外场之间存在复杂的相互作用。这些发现有助于完善量子理论,丰富我们对SPPSISQW结构独特性质的理解,特别是突出了与传统块状半导体和其他低维半导体结构(如量子线和超晶格)的显著差异。此外,与没有电磁波的情况相比,外部电磁波的影响引入了非线性效应和独特的结果,正如本研究的结果所证明的那样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semi-parabolic plus semi-inverse squared quantum well: the acousto-magneto-electric field in the presence of electromagnetic waves

Using the quantum kinetic equation method for electrons in the semi-parabolic plus semi-inverse squared quantum well (SPPSISQW) structure in the presence of external electromagnetic waves, we derived novel analytical expressions for the acousto-magneto-electric (AME) field. In addition, numerical results were conducted to investigate the dependence of the AME field on various parameters, including the frequency of external electromagnetic waves, acoustic wave frequency \(\omega_{q}\), temperature, magnetic field. Notably, the resonance peak position of the AME field remains unaffected by temperature but shifts significantly with electromagnetic wave frequency and magnetic field. The high-frequency electromagnetic wave significantly enhance the AME field, introducing new resonant peaks and modulating the field’s amplitude and position. As the frequency of EMW Ω increases, the resonance peaks shift to higher magnetic field values. The study identifies the cyclotron resonance phenomenon, where the AME field increases sharply at specific magnetic field strengths. This resonance shifts with changes in the electromagnetic wave frequency, indicating a complex interplay between electrons, phonons, and external fields. These findings contribute to perfecting quantum theory and enrich our understanding of the unique properties of SPPSISQW structure, especially highlighting significant differences from conventional bulk semiconductors and other low-dimensional semiconductor structures such as quantum wires and superlattices. Furthermore, the influence of external electromagnetic waves introduces nonlinear effects and distinctive results compared to scenarios without electromagnetic waves, as demonstrated by the results presented in this study.

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来源期刊
Journal of the Korean Physical Society
Journal of the Korean Physical Society PHYSICS, MULTIDISCIPLINARY-
CiteScore
1.20
自引率
16.70%
发文量
276
审稿时长
5.5 months
期刊介绍: The Journal of the Korean Physical Society (JKPS) covers all fields of physics spanning from statistical physics and condensed matter physics to particle physics. The manuscript to be published in JKPS is required to hold the originality, significance, and recent completeness. The journal is composed of Full paper, Letters, and Brief sections. In addition, featured articles with outstanding results are selected by the Editorial board and introduced in the online version. For emphasis on aspect of international journal, several world-distinguished researchers join the Editorial board. High quality of papers may be express-published when it is recommended or requested.
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