Targeted optimization in small-scale atomic structure calculations: application to Au I
arXiv:2403.02829 · doi:10.1088/1361-6455/ad2b71
Abstract
The lack of reliable atomic data can be a severe limitation in astrophysical modelling, in particular of events such as kilonovae that require information on all neutron-capture elements across a wide range of ionization stages. Notably, the presence of non-orthonormalities between electron orbitals representing configurations that are close in energy can introduce significant inaccuracies in computed energies and transition probabilities. Here, we propose an explicit targeted optimization method that can effectively circumvent this concern while retaining an orthonormal orbital basis set. We illustrate this method within the framework of small-scale atomic structure models of Au I, using the GRASP2018 multiconfigurational Dirac-Hartree-Fock atomic structure code. By comparing to conventional optimization schemes we show how a targeted optimization approach improves the energy level positioning and ordering. Targeted optimization also leads to better agreement with experimental data for the strongest E1 transitions. This illustrates how small-scale models can be significantly improved with minor computational costs if orbital non-orthonormalities are considered carefully. These results should prove useful to multi-element atomic structure calculations in, for example, astrophysical opacity applications involving neutron-capture elements.
14 pages, 3 figures, 6 tables; published in Journal of Physics B
References in corpus (6)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Origin of the heavy elements in binary neutron-star mergers from a gravitational wave event
- A kilonova as the electromagnetic counterpart to a gravitational-wave source
- The elemental composition of the Sun III. The heavy elements Cu to Th
- The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope III. Integral-field spectroscopy
- NLTE Spectra of Kilonovae