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Communication: The electronic structure of matter probed with a singlefemtosecond hard x-ray pulse

机译:交流:用单一探针探测物质的电子结构飞秒硬X射线脉冲

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摘要

Physical, biological, and chemical transformations are initiated by changes in the electronic configuration of the species involved. These electronic changes occur on the timescales of attoseconds (10−18 s) to femtoseconds (10−15 s) and drive all subsequent electronic reorganization as the system moves to a new equilibrium or quasi-equilibrium state. The ability to detect the dynamics of these electronic changes is crucial for understanding the potential energy surfaces upon which chemical and biological reactions take place. Here, we report on the determination of the electronic structure of matter using a single self-seeded femtosecond x-ray pulse from the Linac Coherent Light Source hard x-ray free electron laser. By measuring the high energy resolution off-resonant spectrum (HEROS), we were able to obtain information about the electronic density of states with a single femtosecond x-ray pulse. We show that the unoccupied electronic states of the scattering atom may be determined on a shot-to-shot basis and that the measured spectral shape is independent of the large intensity fluctuations of the incoming x-ray beam. Moreover, we demonstrate the chemical sensitivity and single-shot capability and limitations of HEROS, which enables the technique to track the electronic structural dynamics in matteron femtosecond time scales, making it an ideal probe technique for time-resolvedX-ray experiments.
机译:物理,生物和化学转化是由所涉及物种的电子构型变化引起的。这些电子变化发生在10毫秒(10 −18 s)到飞秒(10 −15 s)的时间范围内,并随着系统向新系统的迁移而推动所有后续的电子重组。平衡或准平衡态。检测这些电子变化动态的能力对于理解发生化学和生物反应的势能表面至关重要。在这里,我们报告了使用来自直线加速器相干光源硬X射线自由电子激光器的单个自种飞秒X射线脉冲确定物质的电子结构的方法。通过测量高能量分辨率非共振频谱(HEROS),我们能够通过单个飞秒X射线脉冲获得有关状态电子密度的信息。我们表明,可以逐次确定散射原子的未占据电子态,并且所测得的光谱形状与入射X射线束的大强度波动无关。此外,我们展示了HEROS的化学敏感性和单发能力以及局限性,这使该技术能够追踪物质中的电子结构动力学在飞秒的时间尺度上,使其成为时间分辨的理想探测技术X射线实验。

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