Lontano Maurizio, Murusidze Ivane
Opt Express. 2003 Feb 10;11(3):248-58. doi: 10.1364/oe.11.000248.
The propagation of femtosecond, multiterawatt, relativistic laser pulses in a transparent plasma is studied. The spatio-temporal dynamics of ultrashort, high-power laser pulses in underdense plasmas differs dramatically from that of long laser beams. We present the results of numerical studies of these dynamics within a model which systematically incorporates finite pulse length effects (i.e., dispersion) along with diffraction and nonlinear refraction in a strongly nonlinear, relativistic regime. New space-time patterns of self-compression, self-focusing and self-phase-modulation, typical of ultrashort, high-intensity laser pulses, are analyzed. The parameters of our numerical simulations correspond to a new class of high-peak-power (> 100 TW), ultrashort-pulsed laser systems, producing pulses with a duration in the 10 - 20 femtosecond range. Spatiotemporal dynamics of these self-effects and underlying physical mechanisms are discussed.
研究了飞秒、多太瓦相对论激光脉冲在透明等离子体中的传播。超短、高功率激光脉冲在欠稠密等离子体中的时空动力学与长激光束的时空动力学有显著差异。我们在一个模型中给出了这些动力学的数值研究结果,该模型在强非线性相对论 regime 中系统地纳入了有限脉冲长度效应(即色散)以及衍射和非线性折射。分析了超短、高强度激光脉冲典型的自压缩、自聚焦和自相位调制的新时空模式。我们数值模拟的参数对应于一类新的高峰值功率(>100太瓦)、超短脉冲激光系统,产生持续时间在10 - 20飞秒范围内的脉冲。讨论了这些自效应的时空动力学及其潜在物理机制。