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Effect of a strong axial magnetic field in the plasma recombination and extreme ultraviolet emission from a highly-ionized capillary discharge

机译:等离子体重组中的强轴向磁场和高电离毛细管放电产生的极紫外辐射的影响

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摘要

The effect of an externally applied 70-100-kG axial magnetic field in the temporal evolution of the extreme ultraviolet emission from a 500- mu m-diameter highly ionized LiH capillary discharge is studied. In the absence of external magnetic confinement, strong emission from ionic transitions excited by collisional recombinations is observed at the end of the current pulse. The externally applied magnetic field is observed to reduce the intensity of the recombination lines by decreasing the rate of plasma cooling by electron heat conduction to the capillary walls. In contrast, the self-generated magnetic field of the discharge aids to the generation of an initially hot plasma, and allows rapid conduction cooling at the end of the current pulse. The results are discussed in relation to a proposed capillary-discharge-excited extreme ultraviolet recombination laser scheme.
机译:研究了外部施加的70-100 kG轴向磁场对从直径为500μm的高度电离的LiH毛细管放电发出的极端紫外线的时间演化的影响。在没有外部磁场限制的情况下,在电流脉冲结束时观察到了由碰撞复合激发的离子跃迁产生的强发射。观察到外部施加的磁场通过降低通过电子传导到毛细管壁的等离子体冷却的速率来降低重组线的强度。相反,放电的自生磁场有助于产生最初很热的等离子体,并允许在电流脉冲结束时进行快速传导冷却。关于提议的毛细管放电激发的极端紫外线复合激光方案,讨论了结果。

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