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High power nonlinear propagation of laser pulses in tenuous gases and plasma channels.

机译:激光脉冲在微弱气体和等离子通道中的大功率非线性传播。

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摘要

The nonlinear propagation over long distances of moderate intensity laser pulses in tenuous gases is studied. The dynamics of these pulses will be affected by nonlinear focusing and dispersion due to the background gas, and by plasma induced refraction and dispersion. Laser propagation is studied numerically using the simulation code WAKE. Different phenomena are found for different regimes of peak input power. For powers near the critical power, temporal pulse narrowing and splitting due to phase modulation and group velocity dispersion is seen. For slightly higher powers, plasma generation and the formation of a trailing pulse, which is guided off axis by plasma refraction and nonlinear gas focusing, is observed. For even higher powers, the laser pulse is partially trapped by the plasma and then exhibits a form of self-interference.; The processes affecting the spectrum of the pulse is also studied. Among these are self-phase modulation, nonlinear self-focusing, plasma generation, and group velocity dispersion. The combination of these factors leads to an asymmetric spectrum. If group velocity dispersion cannot arrest nonlinear self-focusing, self-phase modulation, coupled with nonlinear self-focusing, gives rise to a red shifted spectrum. In case plasma is generated, large blue shifted components are observed. The maximum blue shift is determined by both the maximum value of the electron density, and the distance over which the plasma extends.; Finally, the injection of laser pulses into hydrodynamically preformed plasma channels is investigated. The injection of laser pulses into hydrodynamically preformed plasma channels can be hindered by the conditions at the entrance of the channel. In particular, neutral gas and narrowing of the channel prevent efficient coupling of laser pulse entering into the channel. To solve this problem, a funnel shaped plasma lens can be grafted onto the channel using an auxiliary formation pulse. Simulations of channel formation show that such a funnel can be made in the density ramp of a gas jet. Simulations of laser pulse propagation show that such a funnel efficiently couples pulse energy into the channel. For a backfill target with a funnel, the coupling efficiency is lower and required funnel parameters are more restrictive than for the gas jet case.
机译:研究了弱气体中中等强度激光脉冲在长距离上的非线性传播。这些脉冲的动态将受到背景气体引起的非线性聚焦和色散以及等离子体诱导的折射和色散的影响。使用仿真代码WAKE对激光传播进行数值研究。对于峰值输入功率的不同机制,发现了不同的现象。对于接近临界功率的功率,可以看到由于相位调制和群速度色散而引起的时间脉冲变窄和分裂。对于稍高的功率,可以观察到等离子体的产生和尾随脉冲的形成,该尾随脉冲由等离子体折射和非线性气体聚焦偏离轴方向。对于更高的功率,激光脉冲被等离子体部分捕获,然后表现出自干扰形式。还研究了影响脉冲频谱的过程。其中包括自相位调制,非线性自聚焦,等离子体生成和群速度色散。这些因素的组合导致光谱不对称。如果群速度色散不能阻止非线性自聚焦,则自相位调制再加上非线性自聚焦,会引起红移谱。如果产生等离子体,则观察到大的蓝移成分。最大蓝移取决于电子密度的最大值和等离子体延伸的距离。最后,研究了将激光脉冲注入流体动力学形成的等离子体通道。激光脉冲注入流体动力学形成的等离子体通道中可能会受到通道入口处的条件的阻碍。特别地,中性气体和通道的狭窄阻止了进入通道的激光脉冲的有效耦合。为了解决这个问题,可以使用辅助形成脉冲将漏斗形等离子体透镜移植到通道上。通道形成的模拟表明,可以在气体射流的密度梯度中制成这样的漏斗。激光脉冲传播的仿真表明,这种漏斗有效地将脉冲能量耦合到通道中。对于带漏斗的回填目标,与气体喷射情况相比,耦合效率较低,并且所需的漏斗参数更具限制性。

著录项

  • 作者

    Wu, Jianzhou.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 149 p.
  • 总页数 149
  • 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 11:41:58

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