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Ultrafast quantum control of ionization dynamics in krypton

机译:fast中电离动力学的超快速量子控制

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Ultrafast spectroscopy with attosecond resolution has enabled the real?time observation of ultrafast electron dynamics in atoms, molecules and solids. These experiments employ attosecond pulses or pulse trains and explore dynamical processes in a pump–probe scheme that is selectively sensitive to electronic state of matter via photoelectron or XUV absorption spectroscopy or that includes changes of the ionic state detected via photo-ion mass spectrometry. Here, we demonstrate how the implementation of combined photo-ion and absorption spectroscopy with attosecond resolution enables tracking the complex multidimensional excitation and decay cascade of an Auger auto-ionization process of a few femtoseconds in highly excited krypton. In tandem with theory, our study reveals the role of intermediate electronic states in the formation of multiply charged ions. Amplitude tuning of a dressing laser field addresses different groups of decay channels and allows exerting temporal and quantitative control over the ionization dynamics in rare gas atoms.
机译:具有亚秒级分辨率的超快光谱学使得能够实时观察原子,分子和固体中的超快电子动力学。这些实验采用了阿秒脉冲或脉冲序列,并探索了一种泵-探针方案中的动力学过程,该方案通过光电子或XUV吸收光谱对物质的电子状态选择性敏感,或者包括通过光离子质谱检测到的离子状态变化。在这里,我们演示了结合光离子和吸收光谱与阿秒分辨率的实现方式如何能够跟踪高度激发的k中数飞秒的俄歇自动电离过程的复杂多维激发和衰减级联。与理论相结合,我们的研究揭示了中间电子态在多电荷离子形成中的作用。修整激光场的振幅调整可解决衰减通道的不同组,并允许对稀有气体原子中的电离动力学进行时间和定量控制。

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