Heo Jaeuk, Kim Yeonguk, Yun Gunsu, Kim Dong Eon
Opt Express. 2023 Jul 31;31(16):26948-26957. doi: 10.1364/OE.495095.
High-intensity X-ray free-electron laser (XFEL) beams create transient and non-equilibrium dense states of matter in solid-density targets. These states can be used to develop atomic X-ray lasers with narrow bandwidth and excellent longitudinal coherence, which is not possible with current XFEL pulses. An atomic kinetics model is used to simulate the population dynamics of atomic inner-shell vacancy states in Mg, Al, and Si, revealing the feasibility of population inversion between K-shell and L-shell vacancy states. We also discuss the gain characteristics of these states implying the possibility of atomic X-ray lasers based on inner-shell vacancy states in the 1.5 keV region. The development of atomic X-ray lasers could have applications in high-resolution spectroscopy and nonlinear optics in the X-ray region.
高强度X射线自由电子激光(XFEL)束在固体密度靶中产生瞬态和非平衡的致密物质状态。这些状态可用于开发具有窄带宽和出色纵向相干性的原子X射线激光器,而这对于当前的XFEL脉冲来说是不可能的。利用一个原子动力学模型来模拟镁、铝和硅中原子内壳层空位态的布居动力学,揭示了K壳层和L壳层空位态之间实现粒子数反转的可行性。我们还讨论了这些状态的增益特性,这意味着基于1.5 keV区域内壳层空位态的原子X射线激光器具有可能性。原子X射线激光器的发展可能会在X射线区域的高分辨率光谱学和非线性光学中得到应用。