The Elemental Abundances (with Uncertainties) of the Most Earth-like Planet
arXiv:1708.08718 · doi:10.1016/j.icarus.2017.08.024
Abstract
To first order, the Earth as well as other rocky planets in the Solar System and rocky exoplanets orbiting other stars, are refractory pieces of the stellar nebula out of which they formed. To estimate the chemical composition of rocky exoplanets based on their stellar hosts' elemental abundances, we need a better understanding of the devolatilization that produced the Earth. To quantify the chemical relationships between the Earth, the Sun and other bodies in the Solar System, the elemental abundances of the bulk Earth are required. The key to comparing Earth's composition with those of other objects is to have a determination of the bulk composition with an appropriate estimate of uncertainties. Here we present concordance estimates (with uncertainties) of the elemental abundances of the bulk Earth, which can be used in such studies. First we compile, combine and renormalize a large set of heterogeneous literature values of the primitive mantle (PM) and of the core. We then integrate standard radial density profiles of the Earth and renormalize them to the current best estimate for the mass of the Earth. Using estimates of the uncertainties in i) the density profiles, ii) the core-mantle boundary and iii) the inner core boundary, we employ standard error propagation to obtain a core mass fraction of wt%. Our bulk Earth abundances are the weighted sum of our concordance core abundances and concordance PM abundances. Our concordance estimates for the abundances of Mg, Sn, Br, B, Cd and Be are significantly lower than previous estimates of the bulk Earth. Our concordance estimates for the abundances of Na, K, Cl, Zn, Sr, F, Ga, Rb, Nb, Gd, Ta, He, Ar, and Kr are significantly higher. The uncertainties on our elemental abundances usefully calibrate the unresolved discrepancies between standard Earth models under various geochemical and geophysical assumptions.
24 pages, 8 figures and 5 tables; Accepted by Icarus on 21 August 2017, in press. doi.org/10.1016/j.icarus.2017.08.024
References in corpus (4)
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Melting and Mixing States of the Earth's Mantle after the Moon-Forming Impact
- Geophysical and geochemical constraints on geoneutrino fluxes from Earth's mantle
- The Feeding Zones of Terrestrial Planets and Insights into Moon Formation
Cited by in corpus (42)
- Astrochemistry and compositions of planetary systems
- A New Window into Planet Formation and Migration: Refractory-to-Volatile Elemental Ratios in Ultra-hot Jupiters
- A new class of Super-Earths formed from high-temperature condensates: HD219134 b, 55 Cnc e, WASP-47 e
- Chemical Fingerprints of Formation in Rocky Super-Earths' Data
- Comprehensive geoneutrino analysis with Borexino
- Interpretation and diversity of exoplanetary material orbiting white dwarfs
- Chemical evidence for planetary ingestion in a quarter of Sun-like stars
- Impact of the measured parameters of exoplanets on the inferred internal structure
- Terrestrial and Martian Heat Flow Limits on Dark Matter
- The influence of bulk composition on long-term interior-atmosphere evolution of terrestrial exoplanets
- Plausible constraints on the range of bulk terrestrial exoplanet compositions in the Solar neighbourhood
- A framework for the architecture of exoplanetary systems. I. Four classes of planetary system architecture
- Lithium pollution of a white dwarf records the accretion of an extrasolar planetesimal
- Nuclear Fusion Inside Dark Matter
- A Search for Low-mass Dark Matter via Bremsstrahlung Radiation and the Migdal Effect in SuperCDMS
- Magma ocean evolution at arbitrary redox state
- Measuring Elemental Abundances of JWST Target Stars for Exoplanet Characterization I. FGK Stars
- A New Generation of Cool White Dwarf Atmosphere Models. III. WD J2356209: Accretion of a Planetesimal with an Unusual Composition
- The HD 137496 system: A dense, hot super-Mercury and a cold Jupiter
- Planet formation throughout the Milky Way: Planet populations in the context of Galactic chemical evolution
- Observation uncertainty effects on the precision of interior planetary parameters
- Detailed chemical compositions of planet-hosting stars: II. Exploration of the interiors of terrestrial-type exoplanets
- Convective shutdown in the atmospheres of lava worlds
- Using Earth to Search for Long-Range Spin-Velocity Interactions
- Europium as a lodestar: diagnosis of radiogenic heat production in terrestrial exoplanets
- The cosmochemistry of planetary systems
- Self-limited tidal heating and prolonged magma oceans in the L 98-59 system
- Galactic chemical evolution]{Galactic chemical evolution of the solar neighborhood, solar twins and exoplanet indicators
- Accretion regions of meteorite parent bodies inferred from a two-endmember isotopic mixing model
- Modeling stellar abundance patterns resulting from the addition of earthlike planetary material
- Building Earth with pebbles made of chondritic components
- Volatile-rich evolution of molten super-Earth L 98-59 d
- Absence of a Runaway Greenhouse Limit on Lava Planets
- Host-star and exoplanet composition: Polluted white dwarf reveals depletion of moderately refractory elements in planetary material
- Origin of the Moon and Lunar Water
- Proto-planetary disk composition-dependent element volatility in the context of rocky planet formation
- Tracing Planetary Accretion in a 3 Gyr-old Hydrogen-Rich White Dwarf: The Extremely Polluted Atmosphere of LSPM J0207+3331
- Potential of constraining the Fifth Force Using the Earth as a Spin and Mass Source from space
- A chemical perspective on planet formation in reduced systems
- What the Solar System Can Teach Us About Rocky Exoplanets
- I Can Do It With A Broken Planetesimal: Characterising the planetary debris in heavily polluted cool white dwarfs
- On the Need for a Classification System for Consistent Characterization of the Composition of Planetary Bodies