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Propagation of an asymmetric relativistic laser pulse in plasma

机译:等离子体中非对称相对论激光脉冲的传播

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摘要

The interaction of a relativistically intense asymmetric laser pulse with a plasma has been studied. The asymmetric shape of the pulse implies that the rise time of the leading edge of the pulse is much greater than the fall time of the trailing edge. The numerical simulation of the propagation of such a pulse through an underdense plasma has shown that relativistic self-focusing enhances the effect of ponderomotive self-channeling. The radial ponderomotive force totally expels the electrons from the axis creating a density channel, that is, cavitation occurs. A very short fall time of the trailing edge (tau(l) omega(p) much less than 1) causes a rapid increase in the amplitude of a laser driven longitudinal electric field to values of a few GV/cm at the back of the pulse. The numerical simulation also has shown that the channel as well as the large-amplitude longitudinal field can be sustained in the range immediately behind the pulse, thus creating favorable conditions to accelerate a trailing bunch of electrons to extremely high energies. According to our model, the accelerating electric field can reach the value 10 GV/cm.
机译:研究了相对论性强的不对称激光脉冲与等离子体的相互作用。脉冲的非对称形状意味着脉冲前沿的上升时间远大于后沿的下降时间。通过稀疏等离子体传播这种脉冲的数值模拟表明,相对论性自聚焦增强了质动力自沟道效应。径向质动力完全将电子从轴上排出,从而形成一个密度通道,即发生了空化。后缘的非常短的下降时间(tau(l)omega(p)远小于1)导致激光驱动的纵向电场的振幅迅速增加,在其背面达到几GV / cm的值。脉冲。数值模拟还表明,通道以及大振幅纵向场可以维持在紧接脉冲之后的范围内,从而创造了有利条件,可将一束电子加速至极高的能量。根据我们的模型,加速电场可以达到10 GV / cm。

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