Enrichment of the Galactic disc with neutron-capture elements: Gd, Dy, and Th

Author:

Mishenina T1,Pignatari M2345,Gorbaneva T1,Côté B256ORCID,Yagüe López A27,Thielemann F-K89,Soubiran C10

Affiliation:

1. Astronomical Observatory, Odessa National University , Shevchenko Park, 65014 Odessa, Ukraine

2. Konkoly Observatory, Research Centre for Astronomy and Earth Sciences (CSFK) , Eötvös Loránd Research Network (ELKH), Konkoly Thege Miklós út 15-17, H-1121 Budapest, Hungary

3. CSFK, MTA Centre of Excellence , Budapest, Konkoly Thege Miklós út 15-17, H-1121 Budapest, Hungary

4. Department of Physics and Mathematics, E.A. Milne Centre for Astrophysics, University of Hull , Hull HU6 7RX, UK

5. Joint Institute for Nuclear Astrophysics – Center for the Evolution of the Elements , East Lansing, Michigan 48824, USA

6. Department of Physics and Astronomy, University of Victoria , Victoria, BC V8P 5C2, Canada

7. Computer, Computational and Statistical Sciences (CCS) Division, Center for Theoretical Astrophysics , Los Alamos National Laboratory, Los Alamos, NM 87545, USA

8. Department of Physics, University of Basel , Klingelbergstrabe 82, CH-4056 Basel, Switzerland

9. GSI Helmholtzzentrum für Schwerionenforschung , Planckstrasse 1, D-64291 Darmstadt, Germany

10. Laboratoire d’Astrophysique de Bordeaux, Univ. Bordeaux– CNRS , B18N, allée Geoffroy Saint-Hilaire, F-33615 Pessac, France

Abstract

ABSTRACT The study of the origin of heavy elements is one of the main goals of nuclear astrophysics. In this paper, we present new observational data for the heavy r-process elements gadolinium (Gd, Z= 64), dysprosium (Dy, Z= 66), and thorium (Th, Z= 90) in a sample of 276 Galactic disc stars (–1.0 < [Fe/H] < + 0.3). The stellar spectra have a high resolution of 42 000 and 75 000, and the signal-to-noise ratio higher than 100. The LTE abundances of Gd, Dy, and Th have been determined by comparing the observed and synthetic spectra for three Gd lines (149 stars), four Dy lines (152 stars), and the Th line at 4019.13 Å (170 stars). For about 70 per cent of the stars in our sample, Gd and Dy are measured for the first time, and Th for 95 per cent of the stars. Typical errors vary from 0.07 to 0.16 dex. This paper provides the first extended set of Th observations in the Milky Way disc. Together with europium (Eu, Z= 63) data from our previous studies, we have compared these new observations with nucleosynthesis predictions and Galactic Chemical Evolution simulations. We confirm that [Gd/Fe] and [Dy/Fe] show the same behaviour of Eu. We study with GCE simulations the evolution of [Th/Fe] in comparison with [Eu/Fe], showing that unlike Eu, either the Th production is metallicity dependent in case of a unique source of the r-process in the Galaxy, or the frequency of the Th-rich r-process source is decreasing with the increase in [Fe/H].

Funder

National Science Foundation

STFC

University of Hull

Hungarian Academy of Sciences

European Research Council

FP7

COST

European Cooperation in Science and Technology

INFRA

Horizon 2020

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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