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Non-local Thermodynamic Equilibrium Stellar Spectroscopy with 1D and 3D Models. II. Chemical Properties of the Galactic Metal-poor Disk and the Halo

dc.contributor.authorBergemann, Maria
dc.contributor.authorCollet, Remo
dc.contributor.authorSchönrich, Ralph
dc.contributor.authorAndrae, Rene
dc.contributor.authorKovalev, Mikhail
dc.contributor.authorRuchti, G R
dc.contributor.authorHansen, C. J.
dc.contributor.authorMagic, Z
dc.date.accessioned2020-12-20T20:57:26Z
dc.date.available2020-12-20T20:57:26Z
dc.date.issued2017
dc.date.updated2020-11-23T10:53:19Z
dc.description.abstractFrom exploratory studies and theoretical expectations it is known that simplifying approximations in spectroscopic analysis (local thermodynamic equilibrium (LTE), 1D) lead to systematic biases of stellar parameters and abundances. These biases depend strongly on surface gravity, temperature and, in particular, for LTE versus non-LTE (NLTE), on metallicity of the stars. Here we analyze the [Mg/Fe] and [Fe/H] plane of a sample of 326 stars, comparing LTE and NLTE results obtained using 1D hydrostatic models and averaged $\langle 3{\rm{D}}\rangle $ models. We show that compared to the $\langle 3{\rm{D}}\rangle $ NLTE benchmark, the other three methods display increasing biases toward lower metallicities, resulting in false trends of [Mg/Fe] against [Fe/H], which have profound implications for interpretations by chemical evolution models. In our best $\langle 3{\rm{D}}\rangle $ NLTE model, the halo and disk stars show a clearer behavior in the [Mg/Fe]–[Fe/H] plane, from the knee in abundance space down to the lowest metallicities. Our sample has a large fraction of thick disk stars and this population extends down to at least [Fe/H] ~ −1.6 dex, further than previously proven. The thick disk stars display a constant [Mg/Fe] ≈ 0.3 dex, with a small intrinsic dispersion in [Mg/Fe] that suggests that a fast SN Ia channel is not relevant for the disk formation. The halo stars reach higher [Mg/Fe] ratios and display a net trend of [Mg/Fe] at low metallicities, paired with a large dispersion in [Mg/Fe]. These indicate the diverse origin of halo stars from accreted low-mass systems to stochastic/inhomogeneous chemical evolution in the Galactic halo.
dc.format.mimetypeapplication/pdfen_AU
dc.identifier.issn0004-637X
dc.identifier.urihttp://hdl.handle.net/1885/218265
dc.language.isoen_AUen_AU
dc.publisherIOP Publishing
dc.sourceThe Astrophysical Journal
dc.titleNon-local Thermodynamic Equilibrium Stellar Spectroscopy with 1D and 3D Models. II. Chemical Properties of the Galactic Metal-poor Disk and the Halo
dc.typeJournal article
local.bibliographicCitation.issue1
local.contributor.affiliationBergemann, Maria, Max Planck Institut fur Astrophysik
local.contributor.affiliationCollet, Remo, College of Science, ANU
local.contributor.affiliationSchönrich, Ralph, University of Oxford
local.contributor.affiliationAndrae, Rene, Max-Planck Institute for Astronomy
local.contributor.affiliationKovalev, Mikhail, Max-Planck Institute for Astronomy
local.contributor.affiliationRuchti, G R, Lund Observatory
local.contributor.affiliationHansen, C. J., University of Copenhagen
local.contributor.affiliationMagic, Z, University of Copenhagen
local.contributor.authoruidCollet, Remo, u5236916
local.description.notesImported from ARIES
local.identifier.absfor020104 - Galactic Astronomy
local.identifier.ariespublicationu4351680xPUB205
local.identifier.citationvolume847
local.identifier.doi10.3847/1538-4357/aa88b5
local.identifier.scopusID2-s2.0-85030162451
local.identifier.thomsonID000410740100002
local.type.statusPublished Version

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