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Resonant and non-resonant beat-wave excitation of relativistic plasma waves.

机译:相对论等离子体波的共振和非共振拍频激发。

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摘要

The phase relationship between a beat-wave excited relativistic plasma wave and its laser pulse driver is important for the phase-locked acceleration of externally injected electrons. This relationship is studied using 2-D particle-in-cell simulations for both the resonant and non-resonant waves excited in a non-uniform plasma whose density is a time and space-varying quantity due to the slow ponderomotive expulsion of the plasma electrons by the laser pulse. It is found that the waves excited at the resonant density get dephased with respect to the beat pattern of the laser pulse. Therefore, externally injected electrons could interact with both accelerating and decelerating fields of the plasma wave, resulting in a decrease in the overall energy gain. Furthermore, the dynamics of this dephasing is highly sensitive of the initial plasma density and laser pulse parameters, as it is expected from an oscillator being driven just slightly off resonance. As opposed to the resonant case, the accelerating electric fields associated with the extremely non-resonant plasmons are always in phase with the beat-pattern of the laser pulse, regardless of the variations in the plasma density. Although the normalized amplitude of the oscillation is small, the longitudinal electric field of such a wave can still be substantial if the plasma density is much higher than the resonant density. The excitation of such non-resonant relativistic plasma waves by a TW CO2 laser pulse is shown to be possible for plasma densities as high as 12 times the resonant density. The density fluctuations and the fields associated with these waves are measured experimentally with a novel collinear Thomson scattering diagnostic system and by the energy change of the injected electrons, respectively.
机译:拍波激发的相对论等离子体波与其激光脉冲驱动器之间的相位关系对于外部注入电子的锁相加速很重要。使用2-D单元格粒子模拟研究了在非均匀等离子体中激发的共振波和非共振波的关系,该非均匀等离子体的密度是由于等离子体电子的慢动能排出而随时间而变化的。通过激光脉冲。已经发现,以共振密度激发的波相对于激光脉冲的搏动图案去相位化。因此,外部注入的电子可能会与等离子体波的加速场和减速场相互作用,从而导致总能量增益降低。此外,这种移相的动力学对初始等离子体密度和激光脉冲参数高度敏感,这是因为预期振荡器会稍微偏离共振而被驱动。与共振情况相反,与极度非共振等离子体激元相关的加速电场始终与激光脉冲的搏动图同相,而与等离子体密度的变化无关。尽管振荡的归一化幅度很小,但是如果等离子体密度远高于谐振密度,则这种波的纵向电场仍然会很大。 TW CO 2 激光脉冲激发这种非共振相对论性等离子体波的结果表明,等离子体密度高达共振密度的12倍是可能的。分别使用新型共线Thomson散射诊断系统和注入电子的能量变化分别通过实验测量了密度波动和与这些波相关的场。

著录项

  • 作者

    Filip, Catalin Vasile.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 p.269
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;
  • 关键词

  • 入库时间 2022-08-17 11:45:57

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