Planet Traps and Planetary Cores: Origins of the Planet-Metallicity Correlation
arXiv:1408.1841 · doi:10.1088/0004-637X/794/1/25
Abstract
Massive exoplanets are observed preferentially around high metallicity ([Fe/H]) stars while low-mass exoplanets do not show such an effect. This so-called planet-metallicity correlation generally favors the idea that most observed gas giants at AU are formed via a core accretion process. We investigate the origin of this phenomenon using a semi-analystical model, wherein the standard core accretion takes place at planet traps in protostellar disks where rapid type I migrators are halted. We focus on the three major exoplanetary populations - hot-Jupiters, exo-Jupiters located at AU, and the low-mass planets. We show using a statistical approach that the planet-metallicity correlations are well reproduced in these models. We find that there are specific transition metallicities with values [Fe/H] to , below which the low-mass population dominates, and above which the Jovian populations take over. The exo-Jupiters significantly exceed the hot-Jupiter population at all observed metallicities. The low-mass planets formed via the core accretion are insensitive to metallicity, which may account for a large fraction of the observed super-Earths and hot-Neptunes. Finally, a controlling factor in building massive planets is the critical mass of planetary cores () that regulates the onset of runaway gas accretion. Assuming the current data is roughly complete at [Fe/H], our models predict that the most likely value of the "mean" critical core mass of Jovian planets is rather than . This implies that grain opacities in accreting envelopes should play an important role in lowering .
20 pages, 5 figures, 6 tables, accepted for publication in ApJ
References in corpus (9)
- Dynamical Outcomes of Planet-Planet Scattering
- Formation of Hot Planets by a combination of planet scattering, tidal circularization, and Kozai mechanism
- Toward a Deterministic Model of Planetary Formation V. Accumulation Near the Ice Line
- Three regimes of extrasolar planets inferred from host star metallicities
- Formation of Jupiter using opacities based on detailed grain physics
- The opacity of grains in protoplanetary atmospheres
- Grain opacity and the bulk composition of extrasolar planets. I. Results from scaling the ISM opacity
- Infall of planetesimals onto growing giant planets: onset of runaway gas accretion and metallicity of their gas envelopes
- Oligarchic planetesimal accretion and giant planet formation
Cited by in corpus (12)
- Heavy metal rules. I. Exoplanet incidence and metallicity
- Connecting planet formation and astrochemistry: Refractory carbon depletion leading to super-stellar C/O in giant planetary atmospheres
- True masses of the long-period companions to HD 92987 and HD 221420 from Hipparcos-Gaia astrometry
- TOI-3714 b and TOI-3629 b: Two gas giants transiting M dwarfs confirmed with HPF and NEID
- Tidal dissipation in rotating low-mass stars and implications for the orbital evolution of close-in massive planets. II. Effect of stellar metallicity
- Planet Mass and Metallicity: The Exoplanets and Solar System Connection
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Super-Earths as Failed Cores in Orbital Migration Traps
- Inward and outward migration of massive planets: moving towards a stalling radius
- Combined Effects of Disk Winds and Turbulence-Driven Accretion on Planet Populations
- The Terrestrial Planet Formation around M Dwarfs: In-situ, Inward Migration or Reversed Migration
- The Heavy-element Content Trend of Planets: A Tracer of their Formation Sites