Formation of Planetary Populations III: Core Composition & Atmospheric Evaporation
arXiv:2007.06659 · doi:10.1093/mnras/staa2087
Abstract
The exoplanet mass radius diagram reveals that super Earths display a wide range of radii, and therefore mean densities, at a given mass. Using planet population synthesis models, we explore the key physical factors that shape this distribution: planets' solid core compositions, and their atmospheric structure. For the former, we use equilibrium disk chemistry models to track accreted minerals onto planetary cores throughout formation. For the latter, we track gas accretion during formation, and consider photoevaporation-driven atmospheric mass loss to determine what portion of accreted gas escapes after the disk phase. We find that atmospheric stripping of Neptunes and sub-Saturns at small orbital radii (0.1AU) plays a key role in the formation of short-period super Earths. Core compositions are strongly influenced by the trap in which they formed. We also find a separation between Earth-like planet compositions at small orbital radii 0.5AU and ice-rich planets (up to 50\% by mass) at larger orbits 1AU. This corresponds well with the Earth-like mean densities inferred from the observed position of the low-mass planet radius valley at small orbital periods. Our model produces planet radii comparable to observations at masses 1-3M. At larger masses, planets' accreted gas significantly increases their radii to be larger than most of the observed data. While photoevaporation, affecting planets at small orbital radii 0.1AU, reduces a subset of these planets' radii and improves our comparison, most planets in our computed populations are unaffected due to low FUV fluxes as they form at larger separations.
28 pages, 16 figures, accepted for publication in MNRAS
References in corpus (31)
- Mass-Radius Relationships for Solid Exoplanets
- Most 1.6 Earth-Radius Planets are not Rocky
- Atmospheric Escape from Hot Jupiters
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- Gas- and dust evolution in protoplanetary disks
- On the radiative equilibrium of irradiated planetary atmospheres
- Line and Mean Opacities for Ultracool Dwarfs and Extrasolar Planets
- Toward a Deterministic Model of Planetary Formation V. Accumulation Near the Ice Line
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- Towards Chemical Constraints on Hot Jupiter Migration
- Evolution of Protoplanetary Discs with Magnetically Driven Disc Winds
- A new equation of state for dense hydrogen-helium mixtures
- Global Models of Planet Formation and Evolution
- Testing the theory of grain growth and fragmentation by millimeter observations of protoplanetary disks
- Composition of Early Planetary Atmospheres I: Connecting Disk Astrochemistry to the Formation of Planetary Atmospheres
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- Constraining planet structure and composition from stellar chemistry: trends in different stellar populations
- The efficiency of dust trapping in ringed proto-planetary discs
- 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
- Gas composition of main volatile elements in protoplanetary discs and its implication for planet formation
- Formation and structure of the three Neptune-mass planets system around HD69830
- Connecting planet formation and astrochemistry: Refractory carbon depletion leading to super-stellar C/O in giant planetary atmospheres
- Time evolution of snow regions and planet traps in an evolving protoplanetary disk
- The maximum mass of planetary embryos formed in core-accretion models
- Magnetically Induced Disk Winds and Transport in the HL Tau Disk
- A pebbles accretion model with chemistry and implications for the solar system
- Formation of Planetary Populations II: Effects of Initial Disk Size & Radial Dust Drift
- Super-Earths as Failed Cores in Orbital Migration Traps
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- Combined Effects of Disk Winds and Turbulence-Driven Accretion on Planet Populations
- The Occurrence-weighted Median Planets Discovered by Transit Surveys Orbiting Solar-type Stars and Their Implications for Planet Formation and Evolution