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Concurrence of monoenergetic electron beams and bright X-rays from an evolving laser-plasma bubble

机译:激光等离子体气泡不断演化产生的单能电子束和明亮的X射线

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摘要

Desktop laser plasma acceleration has proven to be able to generate gigaelectronvolt-level quasi-monoenergetic electron beams. Moreover, such electron beams can oscillate transversely (wiggling motion) in the laser-produced plasma bubble/channel and emit collimated ultrashort X-ray flashes known as betatron radiation with photon energy ranging from kiloelectronvolts to mega-electronvolts. This implies that usually one cannot obtain bright betatron X-rays and high-quality electron beams with low emittance and small energy spread simultaneously in the same accelerating wave bucket. Here, we report the first (to our knowledge) experimental observation of two distinct electron bunches in a single laser shot, one featured with quasi-monoenergetic spectrum and another with continuous spectrum along with large emittance. The latter is able to generate high-flux betatron X-rays. Such is observed only when the laser self-guiding is extended over 4 mm at a fixed plasma density (4 × 1018 cm-3). Numerical simulation reveals that two bunches of electrons are injected at different stages due to the bubble evolution. The first bunch is injected at the beginning to form a stable quasi-monoenergetic electron beam, whereas the second one is injected later due to the oscillation of the bubble size as a result of the change of the laser spot size during the propagation. Due to the inherent temporal synchronization, this unique electron-photon source can be ideal for pump-probe applications with femtosecond time resolution.
机译:事实证明,台式激光等离子加速器能够产生千兆电子伏级的准单能电子束。此外,这样的电子束可以在激光产生的等离子气泡/通道中横向振荡(摆动运动),并发射准直的超短X射线闪光(称为倍增子辐射),其光子能量范围从千电子伏到兆电子伏。这意味着通常不能在同一加速波桶中同时获得明亮的电子加速器X射线和低辐射,低能量扩散的高质量电子束。在这里,我们报告了一次(据我们所知)对单个激光束中两个不同电子束的首次实验观察,一个电子束具有准单能谱,另一个具有连续光谱以及大发射率。后者能够产生高通量的电子加速器X射线。仅当激光自导在固定的等离子体密度(4×1018 cm-3)上延伸超过4 mm时,才能观察到这种情况。数值模拟表明,由于气泡的演化,在不同阶段注入了两束电子。第一个束在开始时被注入以形成稳定的准单能电子束,而第二个束由于在传播过程中由于激光光斑尺寸的变化而引起的气泡尺寸的振荡而随后被注入。由于固有的时间同步,这种独特的电子-光子源非常适合飞秒时间分辨率的泵浦探头应用。

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