Many Roads Lead to Lithium: Formation Pathways For Lithium-Rich Red Giants
Abstract
Stellar models predict that lithium (Li) inside a star is destroyed during the first dredge-up phase, yet 1.2% of red giant stars are Li-rich. We aim to uncover possible origins of this population, by analysing 1155 Li-rich giants (A(Li) 1.5) in GALAH DR3. To expose peculiar traits of Li-rich stars, we construct a reference sample of Li-normal (doppelg\"anger) stars with matched evolutionary state and fiducial supernova abundances. Comparing Li-rich and doppelg\"anger spectra reveals systematic differences in the H- and Ca-triplet line profiles associated with the velocity broadening measurement. We also find twice as many Li-rich stars appear to be fast rotators (2% with km s) compared to doppelg\"angers. On average, Li-rich stars have higher abundances than their doppelg\"angers, for a subset of elements, and Li-rich stars at the base of RGB have higher mean process abundances ( dex for Ba, Y, Zr), relative to their doppelg\"angers. External mass-transfer from intermediate-mass AGB companions could explain this signature. Additional companion analysis excludes binaries with mass ratios 0.5 at 7 AU. We also discover that highly Ba-enriched stars are missing from the Li-rich population, possibly due to low-mass AGB companions which preclude Li-enrichment. Finally, we confirm a prevalence of Li-rich stars on the red clump that increases with lithium, which supports an evolutionary state mechanism for Li-enhancement. Multiple culprits, including binary spin-up and mass-transfer, are therefore likely mechanisms of Li-enrichment.
Keywords
Cite
@article{arxiv.2306.03323,
title = {Many Roads Lead to Lithium: Formation Pathways For Lithium-Rich Red Giants},
author = {Maryum Sayeed and Melissa K. Ness and Benjamin T. Montet and Matteo Cantiello and Andrew R. Casey and Sven Buder and Megan Bedell and Katelyn Breivik and Brian D. Metzger and Sarah L. Martell and Leah McGee-Gold},
journal= {arXiv preprint arXiv:2306.03323},
year = {2025}
}
Comments
29 pages, 18 figures, 6 tables. Accepted in ApJ