Planet formation throughout the Milky Way: Planet populations in the context of Galactic chemical evolution
arXiv:2308.15504 · doi:10.1051/0004-6361/202346697
Abstract
As stellar compositions evolve over time in the Milky Way, so will the resulting planet populations. In order to place planet formation in the context of Galactic chemical evolution, we make use of a large () stellar sample representing the thin and thick discs, defined chemically, and the halo, and we simulate planet formation by pebble accretion around these stars. We build a chemical model of their protoplanetary discs, taking into account the relevant chemical transitions between vapour and refractory minerals, in order to track the resulting compositions of formed planets. We find that the masses of our synthetic planets increase on average with increasing stellar metallicity [Fe/H] and that giant planets and super-Earths are most common around thin-disc (-poor) stars since these stars have an overall higher budget of solid particles. Giant planets are found to be very rare (1\%) around thick-disc (-rich) stars and nearly non-existent around halo stars. This indicates that the planet population is more diverse for more metal-rich stars in the thin disc. Water-rich planets are less common around low-metallicity stars since their low metallicity prohibits efficient growth beyond the water ice line. If we allow water to oxidise iron in the protoplanetary disc, this results in decreasing core mass fractions with increasing [Fe/H]. Excluding iron oxidation from our condensation model instead results in higher core mass fractions, in better agreement with the core-mass fraction of Earth, that increase with increasing [Fe/H]. Our work demonstrates how the Galactic chemical evolution and stellar parameters, such as stellar mass and chemical composition, can shape the resulting planet population.
21 pages, 16 figures, accepted in A&A
References in corpus (60)
- The Transiting Exoplanet Survey Satellite
- New evolutionary models for pre-main sequence and main sequence low-mass stars down to the hydrogen-burning limit
- New constraints on the chemical evolution of the solar neighbourhood and Galactic disc(s). Improved astrophysical parameters for the Geneva-Copenhagen Survey
- Mass-Radius Relationships for Solid Exoplanets
- The GALAH+ Survey: Third Data Release
- Building Terrestrial Planets
- APOGEE Data and Spectral Analysis from SDSS Data Release 16: Seven Years of Observations Including First Results from APOGEE-South
- Separating gas-giant and ice-giant planets by halting pebble accretion
- A stellar-mass-dependent drop in planet occurrence rates
- Density, not radius, separates rocky and water-rich small planets orbiting M dwarf stars
- The structure of protoplanetary discs around evolving young stars
- Towards Chemical Constraints on Hot Jupiter Migration
- Planetesimal formation starts at the snow line
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- The Gaia-ESO Survey: the Galactic Thick to Thin Disc transition
- Observational constraints on the origin of the elements. IV: The standard composition of the Sun
- Chemical similarities between Galactic bulge and local thick disk red giant stars
- The Gaia-ESO Public Spectroscopic Survey: Implementation, data products, open cluster survey, science, and legacy
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- How drifting and evaporating pebbles shape giant planets I: Heavy element content and atmospheric C/O
- Planet-forming material in a protoplanetary disc: the interplay between chemical evolution and pebble drift
- The First APOKASC Catalog of Kepler Dwarf and Subgiant Stars
- The Gaia-ESO Public Spectroscopic Survey: Motivation, implementation, GIRAFFE data processing, analysis, and final data products
- Abundant refractory sulfur in protoplanetary disks
- Spatial mapping of ices in the Oph-F core: A direct measurement of CO depletion and the formation of CO2
- Empirical constraints on turbulence in proto-planetary discs
- The Elemental Abundances (with Uncertainties) of the Most Earth-like Planet
- A stellar mass dependence of structured disks: a possible link with exoplanet demographics
- The AMBRE project: The thick thin disk and thin thick disk of the Milky Way
- Constraining planet structure and composition from stellar chemistry: trends in different stellar populations
- Chemistry in an Evolving Protoplanetary Disk: Effects on Terrestrial Planet Composition
- Influence of sub- and super-solar metallicities on the compositions of solid planetary building blocks
- Observed sizes of planet-forming disks trace viscous evolution
- The lowest detected stellar Fe abundance: The halo star SMSS J160540.18-144323.1
- The all-sky PLATO input catalogue
- How dust fragmentation may be beneficial to planetary growth by pebble accretion
- Why do M dwarfs have more transiting planets?
- Leaky dust traps: How fragmentation impacts dust filtering by planets
- Jupiter formed as a pebble pile around the N ice line
- Chemical abundances of 1111 FGK stars from the HARPS GTO planet search program IV. Carbon and C/O ratios for Galactic stellar populations and planet hosts
- Nucleation and growth of iron pebbles explains the formation of iron-rich planets akin to Mercury
- Exploring the conditions for forming cold gas giants through planetesimal accretion
- Plausible constraints on the range of bulk terrestrial exoplanet compositions in the Solar neighbourhood
- Evolution of the Water Snow Line in Magnetically Accreting Protoplanetary Disks
- Exoplanets in the Galactic context: Planet occurrence rates in the thin disk, thick disk and stellar halo of Kepler stars
- An Increase in Small-planet Occurrence with Metallicity for Late-type Dwarf Stars in the Kepler Field and Its Implications for Planet Formation
- Dust clearing by radial drift in evolving protoplanetary discs
- Disc population synthesis: Decrease in the solid mass reservoir through pebble drift
- Anatomy of rocky planets formed by rapid pebble accretion II. Differentiation by accretion energy and thermal blanketing
- An Analytical Theory for the Growth from Planetesimals to Planets by Polydisperse Pebble Accretion
- The nitrogen carrier in protoplanetary disks
- Forming planets around stars with non-solar elemental composition
- Galactic chemical evolution of exoplanet host stars: Are high-mass planetary systems young?
- Planet Occurrence Rate Correlated to Stellar Dynamical History: Evidence from Kepler and Gaia
- How the origin of stars in the Galaxy impacts the composition of planetary building blocks
- Formation of giant planets with large metal masses and metal fractions via giant impacts in a rapidly dissipating disk
- Age distribution of exoplanet host stars: Chemical and Kinematics age proxies from GAIA DR3
- Growing the seeds of pebble accretion through planetesimal accretion
- The effect of core formation on surface composition and planetary habitability
- Inferring the Helium abundance of extragalactic Globular Clusters using Integrated Spectra
Cited by in corpus (10)
- Exoplanets Across Galactic Stellar Populations with PLATO: Estimating Exoplanet Yields Around FGK Stars for the Thin Disk, Thick Disk and Stellar Halo
- Populating The Milky Way: Characterising Planet Demographics by Combining Galaxy Formation Simulations and Planet Population Synthesis Models
- Ariel stellar characterisation III. Fast rotators and new FGK stars in the Ariel Mission Candidate Sample
- A primordial radius valley as a consequence of planet formation
- zoomies: A tool to infer stellar age from vertical action in Gaia data
- Exploring the conditions for forming planetesimals by the streaming instability and planetary systems by pebble accretion
- Where in the Milky Way Do Exoplanets Preferentially Form?
- How stellar mass and disc size shape the formation and migration of super-Earths
- A Sequoia stellar candidate with very high 7Li and 9Be
- The Multiband Imaging Survey for High-Alpha PlanetS (MISHAPS) I: Preliminary Constraints on the Occurrence Rate of Hot Jupiters in 47 Tucanae