The AMBRE Project: r-process elements in the Milky Way thin and thick discs
arXiv:1809.07960 · doi:10.1051/0004-6361/201833782
Abstract
The chemical evolution of neutron capture elements in the Milky Way disc is still a matter of debate. We aim to understand the chemical evolution of r-process elements in Milky Way disc. We focus on three pure r-process elements Eu, Gd, and Dy. Using high-resolution FEROS, HARPS, and UVES spectra from the ESO archive, we perform a homogeneous analysis on 6500 FGK Milky Way stars, thanks to the automatic optimization pipeline GAUGUIN. We present abundances of Ba (5057 stars), Eu (6268 stars), Gd (5431 stars), and Dy (5479 stars). We chemically characterize the thin and the thick discs, and a metal-rich alpha-rich population. We find that the [Eu/Fe] ratio follows a continuous sequence from the thin disc to the thick disc as a function of the metallicity. In thick disc stars, the [Eu/Ba] ratio is found to be constant, while the [Gd/Ba] and [Dy/Ba] ratios decrease as a function of the metallicity. These observations clearly indicate a different nucleosynthesis history in the thick disc between Eu and Gd-Dy. We also find that the alpha-rich metal-rich stars are also enriched in r-process elements (like thick disc stars), but their [Ba/Fe] is very different from thick disc stars. Finally, we find that the [r/α] ratio tends to decrease with metallicity, indicating that supernovae of different properties probably contribute differently to the synthesis of r-process elements and α-elements. We provide average abundance trends for [Ba/Fe] and [Eu/Fe] with rather small dispersions, and for the first time for [Gd/Fe] and [Dy/Fe]. This data may help to constrain chemical evolution models of Milky Way r- and s-process elements and the yields of massive stars. Including yields of neutron-star or black hole mergers is now crucial if we want to quantitatively compare observations to Galactic chemical evolution models.
15 pages, 7 figures
References in corpus (18)
- Gaia Data Release 2. Summary of the contents and survey properties
- Multi-messenger Observations of a Binary Neutron Star Merger
- A grid of MARCS model atmospheres for late-type stars I. Methods and general properties
- Astrophysics Source Code Library
- Spectroscopic identification of r-process nucleosynthesis in a double neutron star merger
- Presupernova evolution and explosive nucleosynthesis of rotating massive stars in the metallicity range -3 <=[Fe/H]<= 0
- Chemical evolution with rotating massive star yields: I. The solar neighbourhood and the s-process elements
- Galactic Chemical Evolution and solar s-process abundances: dependence on the 13C-pocket structure
- CH in stellar atmospheres: an extensive linelist
- The Gaia-ESO Survey: the Galactic Thick to Thin Disc transition
- Estimating the Contribution of Dynamical Ejecta in the Kilonova Associated with GW170817
- A strong case for fast stellar rotation at very low metallicities
- Chemical abundances of 1111 FGK stars from the HARPS GTO planet search program II: Cu, Zn, Sr, Y, Zr, Ba, Ce, Nd and Eu
- Line lists for the A2PI-X2Sigma+ (red) and {B2Sigma+-X2Sigma} (violet) Systems of CN, 13C14N, and 12C15N, and Application to Astronomical Spectra
- The temporal evolution of neutron-capture elements in the Galactic discs
- The AMBRE Project: Constraining the lithium evolution in the Milky Way
- Galactic Chemical Evolution: the Impact of the 13C-pocket Structure on the s-process Distribution
- The AMBRE Project: Parameterisation of FGK-type stars from the ESO:HARPS archived spectra
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- Horizons: Nuclear Astrophysics in the 2020s and Beyond
- On the origin of the Galactic thin and thick discs, their abundance gradients and the diagnostic potential of their abundance ratios
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- The chemical evolution of r-process elements from neutron star mergers: the role of a 2-phase interstellar medium
- Abundances of neutron-capture elements in thin- and thick-disc stars in the solar neighbourhood
- Neutron star mergers as the astrophysical site of the r-process in the Milky Way and its satellite galaxies
- Explaining the decrease in ISM lithium at super-solar metallicities in the solar vicinity
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- Assessing the performance of LTE and NLTE synthetic stellar spectra in a machine learning framework
- The Gaia-ESO survey: placing constraints on the origin of r-process elements
- Observational constraints on the origin of the elements. VI. Origin and evolution of neutron-capture elements as probed by the Gaia-ESO survey
- Europium as a lodestar: diagnosis of radiogenic heat production in terrestrial exoplanets
- Galactic r-process abundance feature shaped by radial migration
- Metallicity-Suppressed Collapsars Cannot be the Dominant r-Process Source in the Milky Way
- Enrichment of the Galactic disc with neutron-capture elements: Gd, Dy, and Th
- NLTE abundances of Eu for a sample of metal-poor stars in the Galactic Halo and Metal-poor Disk with 1D and <3D> models
- Abundance of barium in the atmospheres of red giants in the Galactic globular cluster NGC 104 (47 Tuc)
- Distribution of Europium in The Milky Way Disk; Its Connection to Planetary Habitability and The Source of The R-Process
- Th/Eu abundance ratio of red giants in the Kepler Field
- Magnesium Isotopic Detection in Cool Stars: Tracing Nucleosynthetic Signatures from MgH Features