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High-resolution radial Kα spectra obtained from a multi-keV electron distribution in solid-density titanium foils generated by relativistic laser-matter interaction

机译:从相对论激光物质相互作用产生的固体密度钛箔中的多keV电子分布获得的高分辨率径向Kα光谱

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摘要

We studied temperature and Kα yield radial profiles of thin titanium foils as a result of femtosecond high-power laser pulse irradiation at several 10~(19) W/cm~2 by high-resolution x-ray spectroscopy. Laser-accelerated electrons heat the cold solid to bulk temperatures of up to ~50 eV. The plasma strongly affects the shape of the emitted Kα doublet, which is surveyed by x-ray spectroscopy with both high spectral (E/ΔE ≥ 15,000) and 1D spatial (Δx ≤ 13.5 μm) resolutions. Temperature-dependent spectra modeled by line-shape calculations are compared with Abel-inverted experimental spectra and provide a radial temperature distribution. The radially resolved Kα yield shows a depletion of the Kα1-line at the position of the laser focus. The density gradients induced by prepulses are modeled by hydrodynamic simulations, and density-dependent line-shape models are applied. The x-ray yield as function of foil thickness is explained by partial refluxing of a multi-keV electron distribution inside the foil, supported by Monte-Carlo simulations. Finally, we derive parameters to optimize the peak brilliance of such a laser-driven thin foil x-ray source.
机译:我们通过高分辨率X射线光谱学研究了飞秒高功率激光脉冲在几个10〜(19)W / cm〜2的温度下对薄钛箔的温度和Kα径向分布的影响。激光加速电子将冷固体加热到高达〜50 eV的整体温度。等离子体强烈影响发射的Kα双峰的形状,这是通过X射线光谱法以高光谱(E /ΔE≥15,000)和1D空间(Δx≤13.5μm)分辨率进行测量的。通过线形计算建模的温度相关光谱与Abel反演的实验光谱进行比较,并提供径向温度分布。径向分解的Kα屈服表明在激光焦点位置Kα1线耗尽。通过流体动力学模拟对由预脉冲引起的密度梯度进行建模,并应用依赖于密度的线形模型。 X射线产量与箔片厚度的关系可以通过蒙特卡洛模拟的支持,通过箔片内部多keV电子分布的部分回流来解释。最后,我们导出参数以优化这种激光驱动的薄箔X射线源的峰值亮度。

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