PHOTOPHORETIC SEPARATION OF METALS AND SILICATES: THE FORMATION OF MERCURY-LIKE PLANETS AND METAL DEPLETION IN CHONDRITES
Creators
- 1. Fakultät für Physik, Universität Duisburg-Essen, Lotharstr. 1, D-47057 Duisburg (Germany)
- 2. Institut für Geowissenschaften, Universität Heidelberg, Im Neuenheimer Feld 234-236, D-69120 Heidelberg (Germany)
- 3. Institut für Planetenforschung, Extrasolare Planeten und Atmosphären, Deutsches Zentrum für Luft- und Raumfahrt (DLR), Rutherfordstrasse 2, D-12489 Berlin (Germany)
Description
Mercury's high uncompressed mass density suggests that the planet is largely composed of iron, either bound within metal (mainly Fe-Ni) or iron sulfide. Recent results from the MESSENGER mission to Mercury imply a low temperature history of the planet which questions the standard formation models of impact mantle stripping or evaporation to explain the high metal content. Like Mercury, the two smallest extrasolar rocky planets with mass and size determination, CoRoT-7b and Kepler-10b, were found to be of high density. As they orbit close to their host stars, this indicates that iron-rich inner planets might not be a nuisance of the solar system but be part of a general scheme of planet formation. From undifferentiated chondrites, it is also known that the metal to silicate ratio is highly variable, which must be ascribed to preplanetary fractionation processes. Due to this fractionation, most chondritic parent bodies—most of them originated in the asteroid belt—are depleted in iron relative to average solar system abundances. The astrophysical processes leading to metal silicate fractionation in the solar nebula are essentially unknown. Here, we consider photophoretic forces. As these forces particularly act on irradiated solids, they might play a significant role in the composition of planetesimals forming at the inner edge of protoplanetary disks. Photophoresis can separate high thermal conductivity materials (iron) from lower thermal conductivity solids (silicate). We suggest that the silicates are preferentially pushed into the optically thick disk. Subsequent planetesimal formation at the edge moving outward leads to metal-rich planetesimals close to the star and metal depleted planetesimals farther out in the nebula.
Availability note (English)
Available from http://dx.doi.org/10.1088/0004-637X/769/1/78Additional details
Identifiers
Publishing Information
- Journal Title
- Astrophysical Journal
- Journal Volume
- 769
- Journal Issue
- 1
- Journal Page Range
- [7 p.]
- ISSN
- 0004-637X
- CODEN
- ASJOAB
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44081692
- Subject category
- S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
- Descriptors DEI
- ASTEROIDS; ASTROPHYSICS; CHONDRITES; DENSITY; IRON; IRON SULFIDES; IRRADIATION; MASS; MATERIALS; METEOROIDS; ORBITS; PLANETS; PROTOPLANETS; SOLAR NEBULA; SOLAR SYSTEM; STARS; STRIPPING; THERMAL CONDUCTIVITY
- Descriptors DEC
- CHALCOGENIDES; DIRECT REACTIONS; ELEMENTS; IRON COMPOUNDS; METALS; METEORITES; NEBULAE; NUCLEAR REACTIONS; PHYSICAL PROPERTIES; PHYSICS; STONE METEORITES; SULFIDES; SULFUR COMPOUNDS; THERMODYNAMIC PROPERTIES; TRANSFER REACTIONS; TRANSITION ELEMENT COMPOUNDS; TRANSITION ELEMENTS