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Calculation of Dyson orbitals using a symmetry-adapted-cluster configuration-interaction methodfor electron momentum spectroscopy: N_2 and H_2O

机译:电子动量谱的对称适应簇构型-相互作用方法计算戴森轨道:N_2和H_2O

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The symmetry-adapted-cluster (SAC) configuration-interaction (CI) theory was introduced to interpret the non-coplanar symmetric (e,2e) results. Dyson orbitals derived from the bench-marked SAC CI general-R method were utilized for computing the electron momentum distributions. The corresponding excitation energies and spectroscopic factors can be used to reproduce the ionization spectra. The implementation was demonstrated by examples of N2 and H20. The electron momentum distributions calculated using SAC CI method were compared with recent experimental results, as well as the Hartree-Fock and density-functional-theory calculations. The SAC CI method gave the best performance on the description of the experimental momentum distributions. It was found that the electron momentum distributions of Dyson orbitals related to the satellite lines can be notably different from those of their parent orbitals due to the electron correlation in the initial target states. Present work demonstrated that the SAC CI theory is a very useful and accurate tool for interpreting high-resolution electron momentum spectroscopy results.
机译:引入对称适应簇(SAC)构型相互作用(CI)理论来解释非共面对称(e,2e)结果。利用从基准SAC CI general-R方法获得的戴森轨道来计算电子动量分布。相应的激发能和光谱因子可用于再现电离光谱。 N2和H2O的实例演示了该实现。使用SAC CI方法计算的电子动量分布与最近的实验结果以及Hartree-Fock和密度泛函理论计算进行了比较。 SAC CI方法在描述实验动量分布方面表现出最佳性能。已经发现,由于初始目标状态下的电子相关性,与卫星线有关的戴森轨道的电子动量分布可能与其母轨道的电子动量分布明显不同。目前的工作表明,SAC CI理论是解释高分辨率电子动量谱结果的一种非常有用且准确的工具。

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