论文标题
通过可饱和吸收和谐振过渡减少超快X射线脉冲持续时间
Decreasing ultrafast X-ray pulse durations with saturable absorption and resonant transitions
论文作者
论文摘要
饱和吸收是一种非线性效应,由于材料的吸收能力由于光子的涌入和电子空位的产生而感到沮丧。实验诱导的铜中可饱和吸收表明,X射线激光脉冲的时间持续时间减少,但对此过程的完全理解仍然缺失。在这项计算工作中,我们采用非本地热力学平衡等离子体模拟来研究飞秒X射线和铜的相互作用。沮丧的吸收开始后,我们发现在高电荷状态下发生的$ k \ text { - } m $谐振过渡再次使铜不透明转变。吸收的变化产生了负责缩短传输信号的瞬时透明窗口。我们还建议使用入射梁诱导的荧光作为替代源,以实现较短的X射线脉冲。强烈的飞秒X射线脉冲对于探测生物样品的结构和动力学或达到物质的极端状态很有价值。缩短的脉冲可能与新兴成像技术有关。
Saturable absorption is a nonlinear effect where a material's ability to absorb light is frustrated due to a high influx of photons and the creation of electron vacancies. Experimentally induced saturable absorption in copper revealed a reduction in the temporal duration of transmitted X-ray laser pulses, but a complete understanding of this process is still missing. In this computational work, we employ non-local thermodynamic equilibrium plasma simulations to study the interaction of femtosecond X-rays and copper. Following the onset of frustrated absorption, we find that a $K\text{--}M$ resonant transition occurring at highly charged states turns copper opaque again. The changes in absorption generate a transient transparent window responsible for the shortened transmission signal. We also propose using fluorescence induced by the incident beam as an alternative source to achieve shorter X-ray pulses. Intense femtosecond X-ray pulses are valuable to probe the structure and dynamics of biological samples or to reach extreme states of matter. Shortened pulses could be relevant for emerging imaging techniques.