无碰撞电子气体中的边缘光电效应:量子力学和动力学描述

IF 0.7 4区 地球科学 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
A. A. Bespalov
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引用次数: 0

摘要

研究了简并无碰撞电子气体中的表面光电效应。计算了半无限量子阱中的二维气体和半无限金属板中的三维气体在电磁辐射诱导下沿刚性光滑边界流动的表面直流电。计算采用两种微观方法,即单粒子Schrödinger方程和玻尔兹曼动力学方程。两种方法在椭圆极化辐射下产生相同的非零净表面(边缘)电流值。对于线性极化波,总表面电流为零,这标志着与电子散射过程显著的情况的关键区别。计算了直流电的空间分布,揭示了其密度随距离含有气体的半平面或半无限平板边缘的距离呈幂律下降。指数随系统的维数而变化,并且在两种方法之间有所不同。此外,电流密度表现出空间振荡,其周期由费米速度和辐射场振荡周期的乘积给出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Edge Photogalvanic Effect in a Collisionless Electron Gas: Quantum-Mechanical and Kinetic Descriptions

We study the surface photogalvanic effect in a degenerate collisionless electron gas. The surface direct current induced by electromagnetic radiation and flowing along a rigid smooth boundary is calculated for a two-dimensional gas in a semi-infinite quantum well and a three-dimensional gas in a semi-infinite metal slab. The calculations employ two microscopic approaches, namely, the single-particle Schrödinger equation and the Boltzmann kinetic equation. Both approaches yield identical nonzero values of the net surface (edge) current under elliptically polarized radiation. For a linearly polarized wave, the total surface current is zero, marking a key distinction from cases where electron scattering processes are significant. Spatial profiles of the direct current are calculated, revealing that its density decreases as a power law with distance from the edge of the half-plane or semi-infinite slab containing the gas. The exponent varies with the dimensionality of the system and differs between the two approaches. Additionally, the current density exhibits spatial oscillations with a period given by the product of the Fermi velocity and the oscillation period of the radiation field.

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来源期刊
Radiophysics and Quantum Electronics
Radiophysics and Quantum Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
1.10
自引率
12.50%
发文量
60
审稿时长
6-12 weeks
期刊介绍: Radiophysics and Quantum Electronics contains the most recent and best Russian research on topics such as: Radio astronomy; Plasma astrophysics; Ionospheric, atmospheric and oceanic physics; Radiowave propagation; Quantum radiophysics; Pphysics of oscillations and waves; Physics of plasmas; Statistical radiophysics; Electrodynamics; Vacuum and plasma electronics; Acoustics; Solid-state electronics. Radiophysics and Quantum Electronics is a translation of the Russian journal Izvestiya VUZ. Radiofizika, published by the Radiophysical Research Institute and N.I. Lobachevsky State University at Nizhnii Novgorod, Russia. The Russian volume-year is published in English beginning in April. All articles are peer-reviewed.
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