English

Extended transition rates and lifetimes in Al I and Al II from systematic multiconfiguration calculations

Atomic Physics 2018-12-26 v1

Abstract

Multiconfiguration Dirac-Hartree-Fock (MCDHF) and relativistic configuration interaction (RCI) calculations were performed for 28 and 78 states in neutral and singly ionized aluminium, respectively. In Al I, the configurations of interest are 3s2nl3s^2nl for n=3,4,5n=3,4,5 with l=0l=0 to 44, as well as 3s3p23s3p^2 and 3s26l3s^26l for l=0,1,2l=0,1,2. In Al II, the studied configurations are, besides the ground configuration 3s23s^2, 3snl3snl with n=3n=3 to 66 and l=0l=0 to 55, 3p23p^2, 3s7s3s7s, 3s7p3s7p and 3p3d3p3d. Valence and core-valence electron correlation effects are systematically accounted for through large configuration state function (CSF) expansions. Calculated excitation energies are found to be in excellent agreement with experimental data from the NIST database. Lifetimes and transition data for radiative electric dipole (E1) transitions are given and compared with results from previous calculations and available measurements, for both Al I and Al II. The computed lifetimes of Al I are in very good agreement with the measured lifetimes in high-precision laser spectroscopy experiments. The present calculations provide a substantial amount of updated atomic data, including transition data in the infrared region. This is particularly important since the new generation of telescopes are designed for this region. There is a significant improvement in accuracy, in particular for the more complex system of neutral Al I. The complete tables of transition data are available.

Keywords

Cite

@article{arxiv.1808.09478,
  title  = {Extended transition rates and lifetimes in Al I and Al II from systematic multiconfiguration calculations},
  author = {A. Papoulia and J. Ekman and P. Jönsson},
  journal= {arXiv preprint arXiv:1808.09478},
  year   = {2018}
}