TY - JOUR
T1 - Chemical abundances and kinematics of 257 G-, K-type field giants. Setting a base for further analysis of giant-planet properties orbiting evolved stars
AU - Adibekyan, V. Zh.
AU - Benamati, L.
AU - Santos, N. C.
AU - Alves, S.
AU - Lovis, C.
AU - Udry, S.
AU - Israelian, G.
AU - Sousa, S. G.
AU - Tsantaki, M.
AU - Mortier, A.
AU - Sozzetti, A.
AU - De Medeiros, J. R.
N1 - This work was supported by the European Research Council/European Community under the FP7 through Starting Grant agreement number 239953. This work was also supported by the Gaia Research for European Astronomy Training (GREATITN) Marie Curie network, funded through the European Union Seventh Framework Programme ([FP7/2007-2013]) under grant agreement number 264895. V.Zh.A. and S.G.S acknowledge the support from the Fundação para a Ciência e a Tecnologia, FCT (Portugal) in the form of the fellowships SFRH/BPD/70574/2010 and SFRH/BPD/47611/2008, respectively. NCS was supported by FCT through the Investigator FCT contract reference IF/00169/2012 and POPH/FSE (EC) by FEDER funding through the programme ‘Programa Operacional de Factores de Competitividade’ – COMPETE. SA acknowledges Post-Doctoral Fellowship from the CAPES brazilian agency (BEX-2077140), and also support by Iniciativa Científica Milenio through grant IC120009, awarded to The Millennium Institute of Astrophysics. GI acknowledges financial support from the Spanish Ministry project MINECO AYA2011-29060. AM received funding from the European Union Seventh Framework Programme (FP7/2007-2013) under grant agreement number 313014 (ETAEARTH).
PY - 2015/6/1
Y1 - 2015/6/1
N2 - We performed a uniform and detailed abundance analysis of 12 refractory
elements (Na, Mg, Al, Si, Ca, Ti, Cr, Ni, Co, Sc, Mn, and V) for a
sample of 257 G- and K-type evolved stars from the CORALIE planet search
programme. To date, only one of these stars is known to harbour a
planetary companion. We aimed to characterize this large sample of
evolved stars in terms of chemical abundances and kinematics, thus
setting a solid base for further analysis of planetary properties around
giant stars. This sample, being homogeneously analysed, can be used as a
comparison sample for other planet-related studies, as well as for
different type of studies related to stellar and Galaxy astrophysics.
The abundances of the chemical elements were determined using an local
thermodynamic equilibrium (LTE) abundance analysis relative to the Sun,
with the spectral synthesis code MOOG and a grid of Kurucz ATLAS9
atmospheres. To separate the Galactic stellar populations, both a purely
kinematical approach and a chemical method were applied. We confirm the
overabundance of Na in giant stars compared to the field FGK dwarfs.
This enhancement might have a stellar evolutionary character, but
departures from LTE may also produce a similar enhancement. Our chemical
separation of stellar populations also suggests a `gap' in metallicity
between the thick-disc and high-α metal-rich stars, as previously
observed in dwarfs sample from HARPS. The present sample, as most of the
giant star samples, also suffers from the B - V colour cut-off, which
excludes low-log g stars with high metallicities, and high-log g star
with low [Fe/H]. For future studies of planet occurrence dependence on
stellar metallicity around these evolved stars, we suggest to use a
subsample of stars in a `cut-rectangle' in the log g-[Fe/H] diagram to
overcome the aforementioned issue.
AB - We performed a uniform and detailed abundance analysis of 12 refractory
elements (Na, Mg, Al, Si, Ca, Ti, Cr, Ni, Co, Sc, Mn, and V) for a
sample of 257 G- and K-type evolved stars from the CORALIE planet search
programme. To date, only one of these stars is known to harbour a
planetary companion. We aimed to characterize this large sample of
evolved stars in terms of chemical abundances and kinematics, thus
setting a solid base for further analysis of planetary properties around
giant stars. This sample, being homogeneously analysed, can be used as a
comparison sample for other planet-related studies, as well as for
different type of studies related to stellar and Galaxy astrophysics.
The abundances of the chemical elements were determined using an local
thermodynamic equilibrium (LTE) abundance analysis relative to the Sun,
with the spectral synthesis code MOOG and a grid of Kurucz ATLAS9
atmospheres. To separate the Galactic stellar populations, both a purely
kinematical approach and a chemical method were applied. We confirm the
overabundance of Na in giant stars compared to the field FGK dwarfs.
This enhancement might have a stellar evolutionary character, but
departures from LTE may also produce a similar enhancement. Our chemical
separation of stellar populations also suggests a `gap' in metallicity
between the thick-disc and high-α metal-rich stars, as previously
observed in dwarfs sample from HARPS. The present sample, as most of the
giant star samples, also suffers from the B - V colour cut-off, which
excludes low-log g stars with high metallicities, and high-log g star
with low [Fe/H]. For future studies of planet occurrence dependence on
stellar metallicity around these evolved stars, we suggest to use a
subsample of stars in a `cut-rectangle' in the log g-[Fe/H] diagram to
overcome the aforementioned issue.
KW - Methods: observational
KW - Techniques: spectroscopic
KW - Stars: abundances
KW - Planetary systems
U2 - 10.1093/mnras/stv716
DO - 10.1093/mnras/stv716
M3 - Article
SN - 0035-8711
VL - 450
SP - 1900
EP - 1915
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
ER -