A three-dimensional hydrodynamical line profile analysis of iron lines and barium isotopes in HD140283
A. J. Gallagher, H.-G. Ludwig, S. G. Ryan, W. Aoki

TL;DR
This study uses 3D LTE stellar atmosphere models to analyze iron lines and barium isotopes in the metal-poor star HD140283, finding a dominant r-process signature and demonstrating improved iron line profile fits over 1D models.
Contribution
It introduces a 3D LTE analysis approach for iron and barium isotopes in metal-poor stars, showing enhanced line profile fits and robust isotope ratios compared to traditional 1D models.
Findings
3D LTE models fit iron line profiles better than 1D models.
Barium isotopes in HD140283 are predominantly formed via the r-process.
The isotopic ratio is robust against modeling uncertainties.
Abstract
Heavy-elements, i.e. those beyond the iron peak, mostly form via two neutron capture processes: the s- and r-process. Metal-poor stars should contain fewer isotopes that form via the s-process, according to currently accepted theory. It has been shown in several investigations that theory and observation do not agree well, raising questions on the validity of either the methodology or the theory. We analyse the metal-poor star HD140283, for which we have a high quality spectrum. We test whether a 3D LTE stellar atmosphere and spectrum synthesis code permits a more reliable analysis of the iron abundance and barium isotope ratio than a 1D LTE analysis. Using 3D model atmospheres, we examine 91 iron lines of varying strength and formation depth. This provides us with the star's rotational speed. With this, we model the barium isotope ratio by exploiting the hyperfine structure of the…
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