Origin of neutron-capture elements with the Gaia-ESO survey: the evolution of s- and r-process elements across the Milky Way

Author:

Molero Marta12,Magrini Laura3ORCID,Matteucci Francesca12,Romano Donatella4ORCID,Palla Marco5ORCID,Cescutti Gabriele12ORCID,Vázquez Carlos Viscasillas6ORCID,Spitoni Emanuele27

Affiliation:

1. Dipartimento di Fisica, Sezione di Astronomia, Universitá degli studi di Trieste , Via G.B. Tiepolo 11, I-34143 Trieste, Italy

2. INAF, Osservatorio Astronomico di Trieste , Via Tiepolo 11, I-34131 Trieste, Italy

3. INAF, Osservatorio Astrofisico di Arcetri , Largo E. Fermi 5, I-50125 Firenze, Italy

4. INAF, Osservatorio di Astrofisica e Scienza dello Spazio , Via Gobetti 93/3, I-40129 Bologna, Italy

5. Sterrenkundig Observatorium, Ghent University , Krijgslaan 281 – S9, B-9000 Gent, Belgium

6. Institute of Theoretical Physics and Astronomy, Vilnius University , Sauletekio av. 3, 10257 Vilnius, Lithuania

7. Université Côte d’Azur, Observatoire de la Côte d’Azur, CNRS, Laboratoire Lagrange, Bd de l’Observatoire , CS 34229, F-06304 Nice Cedex 4, France

Abstract

ABSTRACT We investigate the origin of neutron-capture elements by analysing their abundance patterns and radial gradients in the Galactic thin disc. We adopt a detailed two-infall chemical evolution model for the Milky Way, including state-of-the-art nucleosynthesis prescriptions for neutron-capture elements. We consider r-process nucleosynthesis from merging neutron stars (MNS) and magneto-rotational supernovae (MR-SNe), and s-process synthesis from low- and intermediate-mass stars (LIMS) and rotating massive stars. The predictions of our model are compared with data from the sixth data release of the Gaia-ESO survey, from which we consider 62 open clusters with age ≳ 0.1 Gyr and ∼1300 Milky Way disc field stars. We conclude that: (i) the [Eu/Fe] versus [Fe/H] diagram is reproduced by both prompt and delayed sources, with the prompt source dominating Eu production; (ii) rotation in massive stars significantly contributes to the first peak s-process elements, but MNS and MR-SNe are necessary to match the observations; and (iii) our model slightly underpredicts Mo and Nd, while accurately reproducing the [Pr/Fe] versus [Fe/H] trend. Regarding the radial gradients, we find that: (i) our predicted [Fe/H] gradient slope agrees with observations from Gaia-ESO and other high-resolution spectroscopic surveys; (ii) the predicted [Eu/H] radial gradient slope is steeper than the observed one, regardless of how quick the production of Eu is, prompting discussion on different Galaxy-formation scenarios and stellar radial migration effects; and (iii) elements in the second s-process peak as well as Nd and Pr exhibit a plateau at low-Galactocentric distances, likely due to enhanced enrichment from LIMS in the inner regions.

Funder

INAF

ERC

Horizon 2020

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Twenty red giants with magnetic fields: a detailed analysis of their chemical composition;Monthly Notices of the Royal Astronomical Society;2023-12-29

2. 2D chemical evolution models;Astronomy & Astrophysics;2023-12

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