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Diagnostics of picosecond laser pulse absorption in preformed plasma

机译:预制血浆中皮秒激光脉冲吸收的诊断

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We present results where highly supersonic plasma jets and accelerated plasma fragments are generated by interaction of an intense picosecond laser pulse with a metallic target (Al, Cu, W, and Ta) in gas atmosphere. The formation of jets and well-localized massive plasma fragments occurs when a strong forward shock from a main laser pulse and a reverse shock from a pre-pulse meet to. Interferometric and shadow graphic measurements with high temporal (100 ps) and spatial (1 mu m) resolution yield information about the formation and evolution of plasma jets and plasma fragments. The excitation of the electric and self-generated magnetic field by ponderomotive force during propagation of the laser pulse in a gas atmosphere was investigated as well. It had been shown previously that under certain conditions a hollow current channel can be generated in laser-produced plasma. The azimuthal magnetic field in such a micro-channel was determined by Faraday rotation of a probing laser beam to be 7.6 MGauss (MG). Ion acceleration in a pinched annular current channel up to 8 MeV analogous to micro-"plasma focus" conditions, may be realized at lengths of 100 mu m. Self-generated magnetic fields of 4-7 MG have also been measured in thin skin layers in front of shock waves, where well-collimated plasma blocks were separated and accelerated away from the plasma body. The velocity of dense plasma blocks reaches values of order of 3 x 10(8) cm/s and they are stable during acceleration and propagation in gas. (c) 2005 Elsevier B.V. All rights reserved.
机译:我们提出的结果是,在气体气氛中,皮秒级强激光脉冲与金属靶(Al,Cu,W和Ta)相互作用产生了高超音速等离子体射流和加速的等离子体碎片。当主激光脉冲产生的强烈正向冲击与预脉冲产生的反向冲击相遇时,就会形成喷流和局部等离子体块。具有高时间(100 ps)和空间(1μm)分辨率的干涉图和阴影图测量结果可提供有关等离子流和等离子碎片的形成和演化的信息。还研究了激光脉冲在气体气氛中传播过程中由磁动力激发的电场和自生磁场。先前已经表明,在某些条件下,可以在激光产生的等离子体中产生空心电流通道。通过探测激光束的法拉第旋转将这种微通道中的方位磁场确定为7.6 MGauss(MG)。在收缩的环形电流通道中,类似于微“等离子体聚焦”条件,离子加速高达8 MeV,可以实现100μm的长度。还已经在冲击波前的薄皮肤层中测量了4-7 MG的自生磁场,在此处,准直的等离子块被分离并加速离开等离子体。密集等离子体块的速度达到3 x 10(8)cm / s的量级,并且在气体加速和传播过程中保持稳定。 (c)2005 Elsevier B.V.保留所有权利。

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