Lyu Chunhai, Cavaletto Stefano M, Keitel Christoph H, Harman Zoltán
Max-Planck-Institut für Kernphysik, Saupfercheckweg 1, 69117, Heidelberg, Germany.
Sci Rep. 2020 Jun 10;10(1):9439. doi: 10.1038/s41598-020-65477-0.
A scheme is put forward to generate fully coherent x-ray lasers based on population inversion in highly charged ions, created by fast inner-shell photoionization using broadband x-ray free-electron-laser (XFEL) pulses in a laser-produced plasma. Numerical simulations based on the Maxwell-Bloch theory show that one can obtain high-intensity, femtosecond x-ray pulses of relative bandwidths Δω/ω = 10-10, by orders of magnitude narrower than in x-ray free-electron-laser pulses for discrete wavelengths down to the sub-ångström regime. Such x-ray lasers can be applicable in the study of x-ray quantum optics and metrology, investigating nonlinear interactions between x-rays and matter, or in high-precision spectroscopy studies in laboratory astrophysics.
提出了一种基于高电荷离子中的粒子数反转来产生完全相干X射线激光的方案,该粒子数反转是通过在激光产生的等离子体中使用宽带X射线自由电子激光(XFEL)脉冲进行快速内壳层光电离而产生的。基于麦克斯韦-布洛赫理论的数值模拟表明,人们可以获得相对带宽为Δω/ω = 10^-10的高强度飞秒X射线脉冲,比离散波长直至亚埃量级的X射线自由电子激光脉冲窄几个数量级。这种X射线激光可应用于X射线量子光学和计量学研究、研究X射线与物质之间非线性相互作用,或应用于实验室天体物理学中的高精度光谱学研究。