English

Atomic data benchmarked by Large-scale Multiconfiguration Dirac-Hartree-Fock Calculations for Beryllium

Atomic Physics 2026-03-13 v1

Abstract

The multiconfiguration Dirac-Hartree-Fock (MCDHF) and relativistic configuration interaction (RCI) methods are used to provide excitation energies, radiative transition data, lifetimes, Lande g-factors, hyperfine interaction constants and isotope shift parameters for the 99 lowest levels of configurations 1s^22snl (n <= 7) + 1s^22p^2 in beryllium. Compared with available experimental excitation energies, the average difference with the standard deviation is 7.08 +/- 1.14cm^-1 (0.011% +/- 0.003%), which demonstrates the excellent theory-observation agreement. The uncertainties of the transition rates are estimated based on two independent methods. The present MCDHF/RCI oscillator strengths and those obtained from the explicitly correlated Gaussian (ECG) method all agree within 2%, except for four transitions affected by strong cancellation effects. For lifetimes, hyperfine splittings and isotope shifts, the present MCDHF/RCI results show good agreement with the few available experimental values, supporting the reliability of our predictions for many states lacking experimental measurements. These comprehensive results can be used in line identification and diagnostics of astrophysical plasmas.

Keywords

Cite

@article{arxiv.2603.11098,
  title  = {Atomic data benchmarked by Large-scale Multiconfiguration Dirac-Hartree-Fock Calculations for Beryllium},
  author = {Sijie Wu and Shaowei Tian and Ran Si and Kai Wang and Per Jönsson and Gediminas Gaigalas and Michel Godefroid and Anish Mayur Amarsi and Chongyang Chen},
  journal= {arXiv preprint arXiv:2603.11098},
  year   = {2026}
}

Comments

7 figures, accepted for publication in Journal of Physical and Chemical Reference Data

R2 v1 2026-07-01T11:15:14.348Z