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Perturbative analysis of the triply differential cross section and circular dichroism in photo-double-ionization of He

机译:He的光电双电离三重微分截面和圆二色性的微扰分析

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摘要

We extend application of our lowest-order perturbative approach (in electron-electron correlation) for analysis of photo-double-ionization (PDI) of He [A.Y. Istomin et al., J. Phys. B 35, L543 (2002)] to excess energies up to 450 eV and to analysis of circular dichroism. We find that account of electron correlation in the final state to first order provides predictions for the triply differential cross section and circular dichroism that are in reasonable agreement with absolute data for excess energies up to 80 eV. For an excess energy of 450 eV, account of electron correlation in both initial and final states is necessary and the predicted triply differential cross sections are in agreement with absolute data only for large mutual ejection angles. We find that at excess energies of a few tens of eV, the PDI is dominated by the \u22virtual\u22 knock-out mechanism, while the \u22direct\u22 (on-shell) knock-out process gives only small contributions for large mutual ejection angles. As a result, we conclude that the circular dichroism effect at these energies originates from the nonzero electron Coulomb phase shifts.
机译:我们扩展了最低阶摄动方法(在电子-电子相关性方面)的应用来分析He的光电双电离(PDI)。 Istomin等人,《物理学报》 B 35,L543(2002)],将其能量提高到450 eV,并分析圆二色性。我们发现,最终状态与一阶电子相关性的考虑为三重差分截面和圆二色性提供了预测,这些预测与高达80 eV的多余能量的绝对数据合理地吻合。对于450 eV的过剩能量,必须考虑初始状态和最终状态下的电子相关性,并且仅对于较大的互射角,预测的三重微分截面与绝对数据一致。我们发现,在数十eV的多余能量下,PDI受\ u22virtual \ u22敲除机制支配,而\ u22direct \ u22(壳上)敲除过程仅对大的互斥量贡献很小。射出角度。结果,我们得出结论,在这些能量下的圆二色性效应源自非零电子库仑相移。

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