Geochemical and planetary dynamical views on the origin of Earth's atmosphere and oceans
arXiv:1312.1202 · doi:10.1016/B978-0-08-095975-7.01301-2
Abstract
Earth's volatile elements (H, C, and N) are essential to maintaining habitable conditions for metazoans and simpler life forms. However, identifying the sources (comets, meteorites, and trapped nebular gas) that supplied volatiles to Earth is not straightforward because secondary processes like mantle degassing, crustal recycling, and escape to space modified the composition of the atmosphere. Here, we review two complementary approaches to investigate the origin of Earth's atmosphere and oceans. The geochemical approach uses volatile element abundances and isotopic compositions to identify the possible contributors to the atmosphere and to disentangle the processes that shaped it. In that respect, noble gases (He, Ne, Ar, Kr, and Xe), elements that are chemically inert and possess several isotopes produced by radioactivity, play a critical role. The dynamical approach uses our knowledge of planetary dynamics to track volatile delivery to the Earth, starting with dust transport in the disk to planet-building processes. The main conclusion is that Earth acquired most of its major volatile elements by accretion of planetesimals or embryos akin to volatile-rich meteorites. At the same time, solar/meteoritic noble gases were captured by embryos and some gases were lost to space, by hydrodynamic escape and large impacts. Comets did not contribute much H, C, and N but may have delivered significant noble gases, which could represent the only fingerprints of the bombardment of our planet with icy bodies. The processes that governed the delivery of volatile elements to the Earth are thought to be relatively common and it is likely that Earth-like planets covered with oceans exist in extra-solar systems.
87 pages, 20 figures, 4 tables. The published version contains updated tables and several additions/corrections
References in corpus (16)
- A low mass for Mars from Jupiter's early gas-driven migration
- The origins and concentrations of water, carbon, nitrogen and noble gases on Earth
- Building Terrestrial Planets
- Origin of the Structure of the Kuiper Belt during a Dynamical Instability in the Orbits of Uranus and Neptune
- Towards planetesimals: dense chondrule clumps in the protoplanetary nebula
- The Compositional Structure of the Asteroid Belt
- Dynamics of the giant planets of the solar system in the gaseous proto-planetary disk and relationship to the current orbital architecture
- Constraints on the mass of a habitable planet with water of nebular origin
- Detecting the Glint of Starlight on the Oceans of Distant Planets
- A perspective from extinct radionuclides on a Young Stellar Object: The Sun and its accretion disk
- Constraints on resonant-trapping for two planets embedded in a protoplanetary disc
- A Hybrid N-body--Coagulation Code for Planet Formation
- Line formation in solar granulation VII. CO lines and the solar C and O isotopic abundances
- Building Giant-Planet Cores at a Planet Trap
- From discs to planetesimals I: evolution of gas and dust discs
- Meteoritical and dynamical constraints on the growth mechanisms and formation times of asteroids and Jupiter
Cited by in corpus (8)
- The composition of Mars
- Strange messenger: A new history of hydrogen on Earth, as told by Xenon
- Atmosphere Origins for Exoplanet Sub-Neptunes
- Exoplanet secondary atmosphere loss and revival
- Hydrogen isotopic evidence for early oxidation of silicate Earth
- The Elusive Origin of Mercury
- Numerous chondritic impactors and oxidized magma ocean set Earth's volatile depletion
- Multiverse Predictions for Habitability: Planetary Characteristics