English

Energy level structure and transition data of Er$^{2+}$

Atomic Physics 2020-05-13 v1 Solar and Stellar Astrophysics

Abstract

The main aim of this paper is to present accurate energy levels of the ground [Xe]4f124f^{12} and first excited [Xe]4f115d4f^{11}5d configurations of Er2+^{2+}. The energy level structure of the Er2+^{2+} ion was computed using the multiconfiguration Dirac-Hartree-Fock and relativistic configuration interaction (RCI) methods, as implemented in the GRASP2018 program package. The Breit interaction, self-energy and vacuum polarization corrections were included in the RCI computations. The zero-first-order approach was used in the computations. Energy levels with the identification in LSLS coupling for all (399) states belonging to the [Xe]4f124f^{12} and [Xe]4f115d4f^{11}5d configurations are presented. Electric dipole (E1) transition data between the levels of these two configurations are computed. The accuracy of the these data are evaluated by studying the behaviour of the transition rates as functions of the gauge parameter as well as by evaluating the cancellation factors. The core electron correlations were studied using different strategies. Root-mean-square deviations obtained in this study for states of the ground and excited configurations from the available experimental or semi-empirical data are 649 cm1^{-1}, and 747 cm1^{-1}, respectively.

Keywords

Cite

@article{arxiv.2002.07615,
  title  = {Energy level structure and transition data of Er$^{2+}$},
  author = {Gediminas Gaigalas and Pavel Rynkun and Laima Radžiūtė and Daiji Kato and Masaomi Tanaka and Per Jönsson},
  journal= {arXiv preprint arXiv:2002.07615},
  year   = {2020}
}

Comments

20 pages, 9 tables, 17 figures

R2 v1 2026-06-23T13:45:26.449Z