Origin of the Ocean on the Earth: Early Evolution of Water D/H in a Hydrogen-rich Atmosphere
arXiv:0709.2025 · doi:10.1016/j.icarus.2007.09.007
Abstract
The origin of the Earth's ocean has been discussed on the basis of deuterium/hydrogen ratios (D/H) of several sources of water in the solar system. The average D/H of carbonaceous chondrites (CC's) is known to be close to the current D/H of the Earth's ocean, while those of comets and the solar nebula are larger by about a factor of two and smaller by about a factor of seven, respectively, than that of the Earth's ocean. Thus, the main source of the Earth's ocean has been thought to be CC's or adequate mixing of comets and the solar nebula. However, those conclusions are correct only if D/H of water on the Earth has remained unchanged for the past 4.5 Gyr. In this paper, we investigate evolution of D/H in the ocean in the case that the early Earth had a hydrogen-rich atmosphere, the existence of which is predicted by recent theories of planet formation no matter whether the nebula remains or not. Then we show that D/H in the ocean increases by a factor of 2-9, which is caused by the mass fractionation during atmospheric hydrogen loss, followed by deuterium exchange between hydrogen gas and water vapor during ocean formation. This result suggests that the apparent similarity in D/H of water between CC's and the current Earth's ocean does not necessarily support the CC's origin of water and that the apparent discrepancy in D/H is not a good reason for excluding the nebular origin of water.
Accepted to Icarus
References in corpus (1)
Cited by in corpus (45)
- Building Terrestrial Planets
- Abiotic oxygen-dominated atmospheres on terrestrial habitable zone planets
- Earth shaped by primordial H atmospheres
- The Delivery of Water During Terrestrial Planet Formation
- Origin of Earth's water: sources and constraints
- Characterizing Exoplanet Habitability
- Solar System Formation in the Context of Extra-Solar Planets
- Water in the terrestrial planet-forming zone of the PDS 70 disk
- Chemo-dynamical deuterium fractionation in the early solar nebula: The origin of water on Earth and in asteroids and comets
- A Compound model for the origin of Earth's water
- The Main Belt Comets and Ice in the Solar System
- Atmospheric nitrogen evolution on Earth and Venus
- Inefficient volatile loss from the Moon-forming disk: reconciling the giant impact hypothesis and a wet Moon
- Escape and fractionation of volatiles and noble gases from Mars-sized planetary embryos and growing protoplanets
- Loss and fractionation of noble gas isotopes and moderately volatile elements from planetary embryos and early Venus, Earth and Mars
- P/2010A2 LINEAR - I: An impact in the Asteroid Main Belt
- Deuterated water in the solar-type protostars NGC 1333 IRAS 4A and IRAS 4B
- Hydrogen isotopic evidence for early oxidation of silicate Earth
- New constraints on the delivery of cometary water and nitrogen to Earth from the 15N/14N isotopic ratio
- Geochemical and planetary dynamical views on the origin of Earth's atmosphere and oceans
- On the formation and evolution of asteroid belts and their potential significance for life
- Setting the Stage: Planet formation and Volatile Delivery
- Warm gas phase chemistry as possible origin of high HDO/H2O ratios in hot and dense gases: application to inner protoplanetary discs
- On the Impact Origin of Phobos and Deimos IV: Volatile Depletion
- Formation of Terrestrial Planets
- Delivery of water and volatiles to the terrestrial planets and the Moon
- Structure of Surface-H2O Layers of Ice-covered Planets with High-pressure Ice
- Migration processes in the Solar System and their role in the evolution of the Earth and planets
- Warm dust surface chemistry in protoplanetary disks. Formation of phyllosilicates
- Asteroid impacts on terrestrial planets: The effects of super-Earths and the role of the resonance
- A primordial atmospheric origin of hydrospheric deuterium enrichment on Mars
- Sub-Neptunes Are Drier Than They Seem: Rethinking the Origins of Water-Rich Worlds
- Mars' atmospheric neon suggests volatile-rich primitive mantle
- Fe I in the β Pictoris circumstellar gas disk I. Physical properties of the neutral iron gas
- Measuring titanium isotope ratios in exoplanet atmospheres
- Multiverse Predictions for Habitability: Planetary Characteristics
- Planet formation: key mechanisms and global models
- An impact-free mechanism to deliver water to terrestrial planets and exoplanets
- Collision probabilities of migrating small bodies and dust particles with planets
- Exocomets in the 47 UMa System: Theoretical Simulations including Water Transport
- Case Studies of Exocomets in the System of HD 10180
- The Most Common Habitable Planets II -- Salty Oceans in Low Mass Habitable Planets and Global Climate Evolution
- Migration of celestial bodies in the Solar system and in several exoplanetary systems
- Effects of the Planar Galactic Tides and Stellar Mass on Comet Cloud Dynamics
- Interactive Evolution of Multiple Water-Ice Reservoirs on Mars: Insights from Hydrogen Isotope Compositions