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Cyclotron Resonance Gain in the Presence of Collisions

机译:存在碰撞时回旋加速器共振增益

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摘要

The conditions needed for the amplication of radiation by an ensemble of magnetized, relativistic electrons that are collisionally slowing down are investigated. The current study is aimed at extending the work of other researchers in developing solid-state sources of Terahertz radiation. The source type considered here is based on gyrotron-like dynamics of graphene electrons, or it can alternately be viewed as a solid state laser source that uses Landau levels as its band structure and is thus similar to a quantum cascade laser. Such sources are appealing because they offer the potential for a compact, tunable source of Terahertz radiation that could have commercial applications in scanning, communication, or energy transfer. An exploration is undertaken, using linear and nonlinear theories, of the conditions under which such sources might be viable, assuming realistic parameters. Classical physics is used, and the model involves electrons in monolayer graphene assumed to be pumped by a laser, follow classical laws of motion with the dissipation represented by a damping force term, and lose energy to the electromagnetic field as well. The graphene is assumed to be in a homogeneous magnetic field, and is sandwiched between two partially-transmissive mirrors so that the device acts as an oscillator.;This thesis incorporates the results of two approaches to the study of the problem. In the first approach, a linear model is derived semi-analytically, which is relevant to the conditions under which there is gain in the device and thus stable operation is possible, versus the regime in which there is no net gain. In the second approach, a numerical simulation is employed to explore the nonlinear regime and saturation behavior of the oscillator. The simulation and the linear model both assume the same original equations of motion for the field and particles that interact self-consistently. The model used here is very simplied, but the aim here is to elucidate the basic principles and scaling behavior of such devices, not necessarily to calculate what the exact dynamics, outputs, and parameters of a fully commercially realized device will be.
机译:研究了由碰撞慢下来的磁化相对论电子的合体放大辐射所需要的条件。当前的研究旨在扩展其他研究人员在开发太赫兹辐射固态源方面的工作。此处考虑的源类型基于石墨烯电子的回旋加速器动力学,或者可以替代地视为使用Landau能级作为其能带结构的固态激光源,因此类似于量子级联激光器。这样的辐射源之所以吸引人,是因为它们为紧凑,可调谐的太赫兹辐射源提供了潜力,该辐射源可在扫描,通信或能量传输中获得商业应用。使用线性和非线性理论,在假设实际参数的情况下,研究了此类来源可行的条件。使用经典物理学,该模型涉及假设由激光泵浦的单层石墨烯中的电子,遵循经典运动定律,其耗散以阻尼力项表示,并且也向电磁场损失能量。假定石墨烯处于均匀磁场中,并且夹在两个部分透射的镜之间,从而使该器件充当振荡器。;本文将两种方法的研究结果结合在一起。在第一种方法中,半解析地得出线性模型,该模型与设备中存在增益的条件有关,因此与没有净增益的状态相比,可以进行稳定的操作。在第二种方法中,采用数值模拟来探索振荡器的非线性状态和饱和行为。模拟和线性模型均假定场和粒子自洽相互作用的运动方程相同。这里使用的模型非常简单,但是这里的目的是阐明此类设备的基本原理和缩放行为,而不必计算出完全商业化实现的设备的确切动态特性,输出和参数。

著录项

  • 作者

    Cole, Nightvid.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Optics.;Energy.;Plasma physics.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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