飘移电子气体中共振电子-等离子体相互作用

M. Akbari-Moghanjoughi
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引用次数: 4

摘要

本文研究了任意简并的漂移电子气体中共振电子-等离子体相互作用。将动力学修正后的量子流体力学模型转化为有效的Schr\ \ {o}dinger-Poisson模型,并从适当线性化的系统中分离变量,得到驱动耦合伪力系统。注意到在低相速动力学体系中,这一修正是电子数密度和温度的函数,对特征类粒子等离子体分支有深刻的影响。我们还提出了另一种解释,量子波粒二象性是共振电子-等离子体相互作用(电子杂音)的直接结果。在这幅图中,漂移的电子通过空间静电能量分布共振散射,用德布罗意振荡来表征它们。推导了阻尼驱动伪力系统中激励的相移和振幅,并研究了它们随归一化化学势和电子温度的变化规律。我们特别详细地研究了电子气体中动能修正对能量色散关系的影响。结果表明,只有色散曲线的低相速分支受到动力学修正的显著影响。电子数密度的增加导致有效质量的增加,从而导致电子迁移率的降低,而电子温度的升高则有相反的作用。动力学修正也显著降低了等离子体传导带。该模型可以进一步研究多种量子等离子体中束-等离子体相互作用和能量交换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resonant electron–plasmon interactions in drifting electron gas
In this paper we investigate the resonant electron-plasmon interactions in a drifting electron gas of arbitrary degeneracy. The kinetic corrected quantum hydrodyanmic model is transformed into the effective Schr\"{o}dinger-Poisson model and driven coupled pseudoforce system is obtained via the separation of variables from the appropriately linearized system. It is remarked that in the low phase-speed kinetic regime the characteristic particle-like plasmon branch is profoundly affected by this correction which is a function of the electron number density and temperature. We also present an alternative explanation of the quantum wave-particle duality as a direct consequence of resonant electron-plasmon interaction (electron murmuration). In this picture drifting electrons are resonantly scattered by spatial electrostatic energy distribution, characterizing them by the de Broglie's oscillations. The phase-shift and amplitude of excitations in damped driven pseudoforce system is derived and their variations in terms of normalized chemical potential and electron temperature is studied. In particular we investigate the kinetic correction effect on energy dispersion relation in the electron gas in detail. It is revealed that only the low phase-speed branch of the dispersion curve is significantly affected by the kinetic correction. It is also found that increase in the electron number density leads to increase in effective mass and consequently decrease in electron mobility while the increase in the electron temperature has the converse effect. The kinetic correction also significantly lowers the plasmon conduction band. Current model may be further elaborated to investigate the beam-plasmon interaction and energy exchange in multispecies quantum plasmas.
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