论文标题
用于生成纳米joule级水彩窗的仪器高阶谐波
Apparatus for generation of nanojoule-class water-window high-order harmonics
论文作者
论文摘要
在我们最近的研究中[Commun。物理。 3,92(2020)],我们开发了一种在中性中性条件下在水窗区域中高阶谐波产生能量缩放的方法。更具体地说,在相匹配条件下,我们获得了纳米joule级的水窗口软X射线谐波光束。通过结合新开发的Terawatt级中红外飞秒激光器和一个宽松的聚焦几何形状来实现这一目标来实现。与先前报道的结果相比,生成的光束强度超过100倍。实验设置包括两个关键部分:Terawatt中红外飞秒驾驶激光[Sci。 Rep。8,7692(2018)]和专门设计的气电池。尽管由于焦点几何形状而导致的最佳气压急剧下降,但氦气仍达到1杆水平。此外,由于气电池的较大针孔大小引起的泄漏速度更快,因此不可能使用正常的气体电池。因此,我们设计了带有差分抽水系统的双结构脉冲气体电池,这使得能够提供足够高的气压。此外,它允许大大减少气体消耗。在这项研究中开发的高阶谐波产生的强大能量量表可以使超过数十万种纳米joule水窗口的产生在不久的将来。
In our recent study [Commun. Phys. 3, 92 (2020)], we have developed an approach for energy-scaling of high-order harmonic generation in water-window region under neutral-medium condition. More specifically, we obtained nanojoule-class water-window soft x-ray harmonic beam under phase match condition. It has been achieved by combining a newly developed terawatt-class mid-infrared femtosecond laser and a loose focusing geometry for high-order harmonic generation. The generated beam is more than 100 times intense compared to previously reported results. The experimental setup included two key parts: terawatt mid-infrared femtosecond driving laser [ Sci. Rep. 8, 7692 (2018)] and specially designed gas cell. Despite the dramatic drop in the optimal gas pressure due to loose focusing geometry, it still reached 1 bar level for helium. Moreover, faster leaking speed caused by larger pinhole size of the gas cell made the use of a normal gas cell impossible. Thus, we have designed a double-structured pulsed-gas cell with a differential pumping system, which enabled providing sufficiently high gas pressure. Moreover, it allowed reducing gas consumption significantly. Robust energy-scalable apparatus for high-order harmonic generation developed in in this study will enable the generation of over tens nanojoule water-window attosecond pulses in the nearest future.