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Overabundance of alpha-elements in exoplanet host stars

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arxiv 1205.6670 v2 pith:P7O6KIOC submitted 2012-05-30 astro-ph.EP astro-ph.SR

classification astro-ph.EPastro-ph.SR
keywords starsplanetplanet-hostingdiskhostsplanetsresultswithout
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We present the results for a chemical abundance analysis between planet-hosting and stars without planets for 12 refractory elements for a total of 1111 nearby FGK dwarf stars observed within the context of the HARPS GTO programs. Of these stars, 109 are known to harbour high-mass planetary companions and 26 stars are hosting exclusively Neptunians and super-Earths. We found that the [X/Fe] ratios for Mg, Al, Si, Sc, and Ti both for giant and low-mass planet hosts are systematically higher than those of comparison stars at low metallicities ([Fe/H] < from -0.2 to 0.1 dex depending on the element). The most evident discrepancy between planet-hosting and stars without planets is observed for Mg. Our data suggest that the planet incidence is greater among the thick disk population than among the thin disk for mettallicities bellow -0.3 dex. After examining the [alpha/Fe] trends of the planet host and non-host samples we conclude that a certain chemical composition, and not the Galactic birth place of the stars, is the determinating factor for that. The inspection of the Galactic orbital parameters and kinematics of the planet-hosting stars shows that Neptunian hosts tend to belong to the "thicker" disk compared to their high-mass planet-hosting counterparts.We also found that Neptunian hosts follow the distribution of high-alpha stars in the UW vs V velocities space, but they are more enhanced in Mg than high-alpha stars without planetary companions. Our results indicate that some metals other than iron may also have an important contribution to planet formation if the amount of iron is low. These results may provide strong constraints for the models of planet formation, especially for planets with low mass.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. PANTERA. I. Hunting for the Most Metal-Rich Stars in the Solar Neighborhood with High-Resolution Spectroscopy

    astro-ph.SR 2026-07 conditional novelty 6.0 of 10

    Gaia XP photometric metallicities overpredict iron abundance by ~0.16 dex for cool metal-rich giants, yet the sample still contains 25 ultra-metal-rich stars up to [Fe/H]=+0.58.

  2. On the formation of super-Jupiters: Core Accretion or Gravitational Instability?

    astro-ph.EP 2024-12 reject novelty 5.0 of 10

    Using stellar abundances of C, O, Mg, Si, and Fe, the authors find that super-Jupiter hosts have at least as much disk metal content as Jupiter hosts, but the difference is not robust to propagated uncertainties.

  3. Chemical Abundances of the Bioessential Elements C, O and S, and the Refractory Elements Fe and Ni, in Solar-type Exoplanet-hosting Stars from HARPS North and South

    astro-ph.EP 2026-06 unverdicted novelty 4.0 of 10

    Observational study of 290 exoplanet-host stars finds higher C, O, S, Fe, Ni abundances in giant-planet hosts than small-planet hosts, with C/O ratios, hot/warm differences, and mass correlations that vary by subpopulation.

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