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在回旋共振条件下,等离子体或电子束中的自感应透明和电磁脉冲压缩。

Self-induced transparency and electromagnetic pulse compression in a plasma or an electron beam under cyclotron resonance conditions.

机构信息

Institute of Applied Physics, RAS, N Novgorod, Russia.

出版信息

Phys Rev Lett. 2010 Dec 31;105(26):265001. doi: 10.1103/PhysRevLett.105.265001. Epub 2010 Dec 22.

Abstract

Based on analogy to the well-known process of the self-induced transparency of an optical pulse propagating through a passive two-level medium we describe similar effects for a microwave pulse interacting with a cold plasma or rectilinear electron beam under cyclotron resonance condition. It is shown that with increasing amplitude and duration of an incident pulse the linear cyclotron absorption is replaced by the self-induced transparency when the pulse propagates without damping. In fact, the initial pulse decomposes to one or several solitons with amplitude and duration defined by its velocity. In a certain parameter range, the single soliton formation is accompanied by significant compression of the initial electromagnetic pulse. We suggest using the effect of self-compression for producing multigigawatt picosecond microwave pulses.

摘要

基于光学脉冲通过无源二能级介质传播时自感应透明的著名过程,我们描述了微波脉冲在回旋共振条件下与冷等离子体或直线电子束相互作用时的类似效应。结果表明,随着入射脉冲的幅度和持续时间的增加,当脉冲无阻尼传播时,线性回旋吸收被自感应透明所取代。事实上,初始脉冲分解为一个或几个孤子,其幅度和持续时间由其速度定义。在一定的参数范围内,单个孤子的形成伴随着初始电磁脉冲的显著压缩。我们建议利用自压缩效应来产生兆瓦级皮秒微波脉冲。

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