Anatomy of rocky planets formed by rapid pebble accretion III. Partitioning of volatiles between planetary core, mantle, and atmosphere
arXiv:2207.09807 · doi:10.1051/0004-6361/202142143
Abstract
Volatile molecules containing hydrogen, carbon, and nitrogen are key components of planetary atmospheres. In the pebble accretion model for rocky planet formation, these volatile species are accreted during the main planetary formation phase. For this study, we modelled the partitioning of volatiles within a growing planet and the outgassing to the surface. The core stores more than 90\% of the hydrogen and carbon budgets of Earth for realistic values of the partition coefficients of H and C between metal and silicate melts. The magma oceans of Earth and Venus are sufficiently deep to undergo oxidation of ferrous Fe to ferric Fe. This increased oxidation state leads to the outgassing of primarily CO and HO from the magma ocean of Earth. In contrast, the oxidation state of Mars' mantle remains low and the main outgassed hydrogen carrier is H. This hydrogen easily escapes the atmosphere due to the irradiation from the young Sun in XUV wavelengths, dragging with it the majority of the CO, CO, HO, and N contents of the atmosphere. A small amount of surface water is maintained on Mars, in agreement with proposed ancient ocean shorelines, for moderately low values of the mantle oxidation. Nitrogen partitions relatively evenly between the core and the atmosphere due to its extremely low solubility in magma; the burial of large reservoirs of nitrogen in the core is thus not possible. The overall low N contents of Earth disagree with the high abundance of N in all chondrite classes and favours a volatile delivery by pebble snow. Our model of rapid rocky planet formation by pebble accretion displays broad consistency with the volatile contents of the Sun's terrestrial planets. The diversity of the terrestrial planets can therefore be used as benchmark cases to calibrate models of extrasolar rocky planets and their atmospheres.
Version accepted for Astronomy & Astrophysics
References in corpus (13)
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Roche lobe effects on the atmospheric loss of "Hot Jupiters"
- Was Venus the First Habitable World of our Solar System?
- The Extreme Ultraviolet and X-Ray Sun in Time: High-Energy Evolutionary Tracks of a Solar-Like Star
- Origin of the RNA World: The Fate of Nucleobases in Warm Little Ponds
- One Solution to the Mass Budget Problem for Planet Formation: Optically Thick Disks with Dust Scattering
- A coupled model of episodic warming, oxidation and geochemical transitions on early Mars
- Day-night cloud asymmetry prevents early oceans on Venus but not on Earth
- The spatial distribution of carbon dust in the early solar nebula and the carbon content of planetesimals
- A very early origin of isotopically distinct nitrogen in inner Solar System protoplanets
- Subsolar Al/Si and Mg/Si ratios of non-carbonaceous chondrites reveal planetesimal formation during early condensation in the protoplanetary disk
- Anatomy of rocky planets formed by rapid pebble accretion I. How icy pebbles determine the core fraction and FeO contents
- Anatomy of rocky planets formed by rapid pebble accretion II. Differentiation by accretion energy and thermal blanketing
Cited by in corpus (12)
- Anatomy of rocky planets formed by rapid pebble accretion II. Differentiation by accretion energy and thermal blanketing
- Anatomy of rocky planets formed by rapid pebble accretion I. How icy pebbles determine the core fraction and FeO contents
- Atmospheric Recyling of Volatiles by Pebble-Accreting Planets
- Burned to ashes: How the thermal decomposition of refractory organics in the inner protoplanetary disc impacts the gas-phase C/O ratio
- The Cosmic Shoreline Revisited: A Metric for Atmospheric Retention Informed by Hydrodynamic Escape
- The cosmochemistry of planetary systems
- Building Earth with pebbles made of chondritic components
- From CO- to HO-dominated atmospheres and back -- How mixed outgassing changes the volatile distribution in magma oceans around M dwarf stars
- Diversity of Exoplanets
- Evolution of gas envelopes and outgassed atmospheres of rocky planets formed via pebble accretion
- An Evolving Cosmic Shoreline and Sandbar Bounding the Rocky Airless Valley
- Deep Mantle-Atmosphere Coupling and Carbonaceous Bombardment: Options for Biomolecule Formation on an Oxidized Early Earth