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arXiv · 2607.15017

The non-LTE abundances of magnesium and yttrium and asteroseismic ages for the chemical clock calibration

Abstract

Building on our previous study, which demonstrated the importance of accounting for departures from local thermodynamic equilibrium (LTE) in elemental-abundance determinations and of using asteroseismic ages, we investigate spatial variations in the empirical [Y/Mg]-age relation across the Galactic disc using a substantially larger stellar sample. We analysed high-resolution stellar spectra and determined Mg and Y abundances through spectral synthesis of multiple spectral features, rigorously accounting for non-LTE (NLTE) effects. We derived asteroseismic ages for stars exhibiting solar-type oscillations and used cross-checked isochrone-based methods for the remaining stars. We determined atmospheric parameters and Mg and Y abundances for 528 Galactic field stars, together with asteroseismic ages for 307 stars and isochronal ages for 221 stars. We also identified two new triple-lined and nine double-lined spectroscopic systems. Combining the present sample with that of our previous study yielded a total of 736 stars, which we used to examine the [Y/Mg]-age relation across the Galactic disc. The relation shows systematic spatial variations that likely reflect differences in star-formation and chemical-enrichment histories. In general, [Y/Mg] tends to increase with metallicity over the investigated age range. At supersolar metallicity, however, this trend may weaken, and the [Y/Mg]-age relations become flatter than those of solar-metallicity stars, which show lower [Y/Mg] values at young ages and higher values at old ages.

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Š. Mikolaitis, G. Tautvaišienė, E. Pakštienė, A. Drazdauskas, V. Bagdonas, C. Viscasillas Vázquez, M. Ambrosch, Y. Chorniy, R. Minkevičiūtė, E. Stonkutė, B. Bale, B. Ćurjurić, A. Sharma, K. Diktanaitė. 2026-07-16. The non-LTE abundances of magnesium and yttrium and asteroseismic ages for the chemical clock calibration. https://arxiv.org/abs/2607.15017

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