Subaru/HDS study of CH stars: elemental abundances for stellar neutron-capture process studies
Aruna Goswami (1), Wako Aoki (2), Drisya Karinkuzhi (1) ((1) Indian, Institute of Astrophysics, Koramangala, Bangalore 560034, India (2) National, Astronomical Observatory, Mitaka, Tokyo, 181-8588 Japan)

TL;DR
This study provides high-resolution spectral analysis of three CH stars and a carbon star, revealing detailed elemental abundances and insights into their neutron-capture processes, enhancing understanding of stellar chemical histories.
Contribution
The paper offers the first comprehensive high-resolution abundance analysis of these stars, clarifying their neutron-capture element origins and updating previous abundance measurements.
Findings
Stars show large enhancements of heavy elements relative to iron.
HD 26's neutron-capture elements mainly originate from s-process.
HD 224959 and HD 198269's elements are primarily from r-process.
Abstract
A comprehensive abundance analysis providing rare insight into the chemical history of lead stars is still lacking. We present results from high resolution (R ~ 50000), spectral analyses of three CH stars, HD 26, HD 198269, HD 224959, and, a carbon star with a dusty envelope, HD 100764. Previous studies on these objects are limited by both resolution and wavelength regions and the results differ significantly from each other. We have undertaken to re-analyse the chemical composition of these objects based on high resolution Subaru spectra covering the wavelength regions 4020 to 6775 A,. Considering local thermodynamic equilibrium and using model atmospheres, we have derived the stellar parameters, the effective temperatures Teff, surface gravities log g, and metallicities [Fe/H] for these objects. The derived parameters for HD 26, HD 100764, HD 198269 and HD 224959 are (5000, 1.6,…
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