Detection of actinides in CEMP-rs stars
A. M. Riyas, D. Karinkuzhi, S. Van Eck, A. Choplin, S. Goriely, L. Siess, A. A. Farha
Department of Physics, University of Calicut, Thenhipalam, Malappuram, Kerala, India · Institute of Astronomy and Astrophysics, Université Libre de Bruxelles · BLU-ULB, Brussels Laboratory of the Universe, blu.ulb.be · BLU-ULB, Brussels Laboratory of the Universe, blu.ulb.be · BLU-ULB, Brussels Laboratory of the Universe, blu.ulb.be · BLU-ULB, Brussels Laboratory of the Universe, blu.ulb.be · Department of Physics, University of Calicut, Thenhipalam, Malappuram, Kerala, India
astro-ph.SR
Submitted: 2026-06-22
Comments: Accepted for publication in The Astrophysical Journal Letters (ApJL); 12 pages, 5 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: The carbon-enhanced metal-poor stars with hybrid enrichments of slow- and rapid neutron-capture elements, the so-called CEMP-rs stars, still raise many questions due to their elusive abundance
Terminology
Abstract
The carbon-enhanced metal-poor stars with hybrid enrichments of slow- and rapid neutron-capture elements, the so-called CEMP-rs stars, still raise many questions due to their elusive abundance signatures. In our recent analysis, we found that heavy r process elements are enhanced in these objects and can be explained by the intermediate neutron-capture process (i-process) occurring in low-mass, very low-metallicity asymptotic giant branch (AGB) stars. However, the origin of actinides such as thorium and uranium is typically associated with explosive nucleosynthesis in highly neutron-rich environments, and their detection in stellar spectra remains challenging due to severe line blending from other elements and carbon-bearing molecules. In this work, we investigate the presence of thorium and uranium abundances in a sample of CEMP-rs stars using their high-resolution spectra obtained with the UVES spectrograph mounted on the UT2 (Kueyen) ESO VLT. Thorium is robustly detected in three stars, while uranium remains marginally detected, allowing only upper limits to be derived. Comparison with theoretical i-process nucleosynthesis models demonstrates that the observed abundances can be reproduced within uncertainties, supporting an i-process origin for these elements. This study reports the first detection of actinides in stars confirmed as CEMP-rs stars, providing new constraints on their nucleosynthetic history. Furthermore, these detections provide a potential way to estimate in the future the time elapsed since the proton-ingestion episode in AGB stars using cosmochronometry techniques, and more generally to place lower limits on the ages of the resulting white dwarf remnants.
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