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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Theory of multiphoton single and double ionization of two-electron atomic systems driven by short-wavelength electric fields: An ab initio treatment
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Theory of multiphoton single and double ionization of two-electron atomic systems driven by short-wavelength electric fields: An ab initio treatment

机译:短波长电场驱动的双电子原子系统的多光子单电离和双电离理论:从头算处理

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摘要

We give a detailed account of an ab initio computational treatment of multiphoton single ionization (with or without excitation) as well as double ionization of two-electron atoms exposed to short-wavelength electric fields. This treatment is time dependent and based on a spectral method of configuration interaction type combined with Jacobi or J-matrix calculations. It involves a complete treatment of electron-electron correlation in the initial and final states as well as during the time propagation. The atom eigenvalue problem is first solved by means of the spectral method. It consists of expanding the atom wave function in a basis of products of complex Coulomb-Sturmian functions of the electron radial coordinates and bipolar harmonics of the angular coordinates. This method allows a high-resolution study of many atomic states, in particular high-lying singly excited states as well as many doubly excited states. Results for He are presented and discussed in detail. The time-dependent Schrodinger equation is then solved by means of an explicit scheme of Runge-Kutta type. An accurate calculation of the probability of single and double ionization is carried out by projecting the ionizing wave packet on fully correlated multichannel scattering wave functions generated by means of the J-matrix method. After a detailed analysis of the accuracy of this method, we show that our results for the total cross section of one-photon single and double ionization of He and H- are in very good agreement with those obtained by the most sophisticated approaches. Two-photon double ionization of He is then considered, and results are presented in a frequency regime where substantial discrepancies subsist between all existing calculations. Our results demonstrate that electron correlations in the final state play a significant role.
机译:我们详细介绍了多光子单电离(有或无激励)以及暴露于短波电场的两电子原子的双电离的从头计算处理。这种处理方式与时间有关,并且基于配置交互类型的光谱方法并结合了Jacobi或J矩阵计算。它涉及在初始状态和最终状态以及时间传播过程中对电子-电子相关性的完整处理。首先通过光谱方法解决原子本征值问题。它包括在电子径向坐标和角坐标的双极谐波的复杂库仑-斯图米函数的乘积的基础上扩展原子波函数。该方法允许高分辨率研究许多原子态,特别是高位单激发态以及许多双激发态。他的结果已详细介绍和讨论。然后借助Runge-Kutta类型的显式方案求解时间相关的Schrodinger方程。通过将电离波包投影到通过J矩阵方法生成的完全相关的多通道散射波函数上,可以准确地计算单电离和双电离的概率。在对该方法的准确性进行了详细分析之后,我们表明,我们对He和H-的单光子单电离和双电离总截面的结果与通过最复杂的方法获得的结果非常吻合。然后考虑了He的双光子双电离,并且在所有现有计算之间存在实质差异的频率范围中给出了结果。我们的结果表明,最终状态下的电子相关性起着重要作用。

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