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Population inversion in the recombination of optically-ionized plasmas

机译:光电离等离子体重组中的种群反转

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摘要

The possibility of using a high-intensity optical field in conjunction with a gas target to produce a highly ionized plasma filament suitable for recombination XUV lasers in both transient and quasi-steady-state regimes is examined. A distinction is made between low Z ions which can be stripped to the desired ionization state at nonrelativistic intensities and higher Z ions which require relativistic intensities to produce the desired ionization. In the nonrelativistic case (E/sub i/>500 eV), it is shown that electron thermal conduction is extremely effective in cooling approximately 10- mu m diameter filaments imbedded in cold background plasma. In the relativistic case, self-focusing of the ionizing laser radiation may lead to a very small diameter electron-cavitated filaments which will undergo a space-charge-driven expansion (Coulomb explosion) on the time scale of an ion plasma period, resulting in the emission of extremely high currents of moderate energy (E approximately=1/8 Zm/sub e/ c/sup 2/) ions. The implications of such filamentation for the scaling of the present type of recombination laser to short wavelengths are discussed.
机译:研究了将高强度光场与气体靶结合使用以生产适用于在瞬态和准稳态两种情况下重组XUV激光器的高电离等离子体丝的可能性。可以在非相对论强度下剥离成所需电离态的低Z离子与需要相对论强度产生所需电离的较高Z离子之间是有区别的。在非相对论的情况下(E / sub i /> 500 eV),表明电子热传导对冷却嵌入在冷背景等离子体中的直径约10μm的细丝非常有效。在相对论的情况下,电离激光辐射的自聚焦可能会导致直径非常小的电子空化灯丝,这些灯丝会在离子等离子体周期的时间尺度上经历空间电荷驱动的膨胀(库仑爆炸),从而导致发出中等能量(E大约= 1/8 Zm / sub e / c / sup 2 /)的极高电流。讨论了这种细丝化对于将当前类型的重组激光器缩放至短波长的意义。

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