Chemistry of Impact-Generated Silicate Melt-Vapor Debris Disks
arXiv:1303.3905 · doi:10.1088/2041-8205/767/1/L12
Abstract
In the giant impact theory for lunar origin, the Moon forms from material ejected by the impact into an Earth-orbiting disk. Here we report the initial results from a silicate melt-vapor equilibrium chemistry model for such impact-generated planetary debris disks. In order to simulate the chemical behavior of a two-phase (melt+vapor) disk, we calculate the temperature-dependent pressure and chemical composition of vapor in equilibrium with molten silicate from 2000 to 4000 K. We consider the elements O, Na, K, Fe, Si, Mg, Ca, Al, Ti, and Zn for a range of bulk silicate compositions (Earth, Moon, Mars, eucrite parent body, angrites, and ureilites). In general, the disk atmosphere is dominated by Na, Zn, and O2 at lower temperatures (< 3000 K) and SiO, O2, and O at higher temperatures. The high-temperature chemistry is consistent for any silicate melt composition, and we thus expect abundant SiO, O2, and O to be a common feature of hot, impact-generated debris disks. In addition, the saturated silicate vapor is highly oxidizing, with oxygen fugacity (fO2) values (and hence H2O/H2 and CO2/CO ratios) several orders of magnitude higher than those in a solar-composition gas. High fO2 values in the disk atmosphere are found for any silicate composition because oxygen is the most abundant element in rock. We thus expect high oxygen fugacity to be a ubiquitous feature of any silicate melt-vapor disk produced via collisions between rocky planets.
6 pages, 4 figures, 2 tables, accepted for publication in ApJ Letters
References in corpus (1)
Cited by in corpus (32)
- The origin of the Moon within a terrestrial synestia
- Circumstellar Debris and Pollution at White Dwarf Stars
- Evidence for Water in the Rocky Debris of a Disrupted Extrasolar Minor Planet
- Gallium isotopic evidence for extensive volatile loss from the Moon during its formation
- Volatile loss following cooling and accretion of the Moon revealed by chromium isotopes
- Inefficient volatile loss from the Moon-forming disk: reconciling the giant impact hypothesis and a wet Moon
- Thermodynamics of Element Volatility and its Application to Planetary Processes
- Enhanced constraints on the interior composition and structure of terrestrial exoplanets
- Magmatic sulfides in the porphyritic chondrules of EH enstatite chondrites
- Atmospheres as windows into sub-Neptune interiors: coupled chemistry and structure of hydrogen-silane-water envelopes
- Stochastic accretion of the Earth
- The importance of silicate vapor in determining the structure, radii, and envelope mass fractions of sub-Neptunes
- Was the Sun a Slow Rotator? -- Sodium and Potassium Constraints from the Lunar Regolith
- Evidence for Radiogenic Sulfur-32 in Type AB Presolar Silicon Carbide Grains?
- VapoRock: Thermodynamics of vaporized silicate melts for modeling volcanic outgassing and magma ocean atmospheres
- Chemical Equilibrium Calculations for Bulk Silicate Earth Material at High Temperatures
- The effect of a small amount of hydrogen in the atmosphere of ultrahot magma-ocean planets: atmospheric composition and escape
- Dust from collisions: A way to probe the composition of exo-planets?
- Speciation and Dissolution of Hydrogen in the Proto-Lunar Disk
- On the impact origin of Phobos and Deimos III: resulting composition from different impactors
- Losing Oceans: The Effects of Composition on the Thermal Component of Impact-driven Atmospheric Loss
- Evidence for post-nebula volatilisation in an exo-planetary body
- Reconceiling the orbital and physical properties of the martian moons
- LavAtmos: An open source chemical equilibrium vaporisation code for lava worlds
- Magneto-rotational instability in the protolunar disk
- Composition, Structure and Origin of the Moon
- Effect of Equation of State and Cutoff Density in Smoothed Particle Hydrodynamics Simulations of the Moon-Forming Giant Impact
- Serendipitous discovery of a dusty disc around WDJ181417.84-735459.83
- LavAtmos 2.0: Incorporating Volatiles Species in Vaporization Models
- Physicochemical Controls on the Compositions of the Earth and Planets
- Coupled Thermal-Chemical Evolution Models of Sub-Neptunes Reveal Atmospheric Signatures of Their Formation Location
- Evolution of Mercury's Earliest Atmosphere