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Interplay between relativistic energy corrections and resonant excitations in x-ray multiphoton ionization dynamics of Xe atoms

机译:XE原子X射线多相电离动力学中相对论能量校正与共振激发的相互作用

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In this paper, we theoretically study x-ray multiphoton ionization dynamics of heavy atoms taking into account relativistic and resonance effects. When an atom is exposed to an intense x-ray pulse generated by an x-ray free-electron laser (XFEL), it is ionized to a highly charged ion via a sequence of single-photon ionization and accompanying relaxation processes, and its final charge state is limited by the last ionic state that can be ionized by a single-photon ionization. If x-ray multiphoton ionization involves deep inner-shell electrons in heavy atoms, energy shifts by relativistic effects play an important role in ionization dynamics, as pointed out in Phys. Rev. Lett. 110, 173005 (2013). On the other hand, if the x-ray beam has a broad energy bandwidth, the high-intensity x-ray pulse can drive resonant photoexcitations for a broad range of ionic states and ionize even beyond the direct one-photon ionization limit, as first proposed in Nat. Photon. 6, 858 (2012). To investigate both relativistic and resonance effects, we extend the XATOM toolkit to incorporate relativistic energy corrections and resonant excitations in x-ray multiphoton ionization dynamics calculations. Charge-state distributions are calculated for Xe atoms interacting with intense XFEL pulses at a photon energy of 1.5 keV and 5.5 keV, respectively. For both photon energies, we demonstrate that the role of resonant excitations in ionization dynamics is altered due to significant shifts of orbital energy levels by relativistic effects. Therefore, it is necessary to take into account both effects to accurately simulate multiphoton multiple ionization dynamics at high x-ray intensity.
机译:在本文中,我们理论上研究了重型原子的X射线多选电离动力学,考虑了相对论和共振效应。当原子暴露于由X射线自由电子激光器(XFEL)产生的强烈的X射线脉冲时,它通过一系列单光子电离和伴随的弛豫过程电离为高度带电的离子,并伴随弛豫过程及其决赛充电状态受最后的离子状态限制,可以通过单光子电离电离。如果X射线多相电离涉及重度原子的深层外壳电子,则通过相对论效应的能量变化在电离动态中起重要作用,如理。 rev. lett。 110,173005(2013)。另一方面,如果X射线束具有宽的能量带宽,则高强度X射线脉冲可以为广泛的离子状态驱动共振光镜,即使超出直接的单光子电离限制也是如此在NAT中提出。光子。 6,858(2012)。为了调查相对论和共振效应,我们扩展了XATOM工具包,在X射线多光子电离动力学计算中包含相对论的能量校正和共振激发。计算电荷状态分布,用于分别以1.5keV和5.5keV的光子能量与强XFEL脉冲相互作用的XE原子。对于光子能量来说,我们证明,由于轨道能量水平的显着变化,通过相对论效应显着变化,改变了共振激发在电离动力学中的作用。因此,有必要考虑在高X射线强度下准确地模拟多光子多电离动力学的两种效果。

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