Crystalline silicates as a probe of disk formation history
arXiv:astro-ph/0602154 · doi:10.1086/503100
Abstract
We present a new perspective on the crystallinity of dust in protoplanetary disks. The dominant crystallization by thermal annealing happens in the very early phases of disk formation and evolution. Both the disk properties and the level of crystallinity are thereby directly linked to the properties of the molecular cloud core from which the star+disk system was formed. We show that, under the assumption of single star formation, rapidly rotating clouds produce disks which, after the main infall phase (i.e. in the optically revealed class II phase), are rather massive and have a high accretion rate but low crystallinity. Slowly rotating clouds, on the other hand, produce less massive disks with lower accretion rate, but high levels of crystallinity. Cloud fragmentation and the formation of multiple stars complicates the problem and necessitates further study. The underlying physics of the model is insufficiently understood to provide the precise relationship between crystallinity, disk mass and accretion rate. But the fact that with `standard' input physics the model produces disks which, in comparison to observations, appear to have either too high levels of crystallinity or too high disk masses, demonstrates that the comparison of these models to observations can place strong contraints on the disk physics. The question to ask is not why some sources are so crystalline, but why some other sources have such a low level of crystallinity.
Accepted for publication in ApJL
Cited by in corpus (18)
- The chemical history of molecules in circumstellar disks. I. Ices
- Bifurcation of planetary building blocks during Solar System formation
- Ice Lines, Planetesimal Composition and Solid Surface Density in the Solar Nebula
- Global Models of Planet Formation and Evolution
- Accretion in protoplanetary disks: the imprint of core properties
- Medium-separation binaries do not affect the first steps of planet formation
- Turbulent diffusion in protoplanetary discs: the effect of an imposed magnetic field
- Structural and compositional properties of brown dwarf disks: the case of 2MASS J04442713+2512164
- FU Orionis - The MIDI/VLTI Perspective
- Formation and evolution of a protoplanetary disk: combining observations, simulations and cosmochemical constraints
- Snow-lines as probes of turbulent diffusion in protoplanetary discs
- Dust crystallinity in protoplanetary disks: the effect of diffusion/viscosity ratio
- Early planet formation in embedded protostellar disks: Setting the stage for the first generation of planetesimals
- Astro & cosmo-chemical consequences of accretion bursts I: the D/H ratio of water
- CAI formation in the early Solar System
- Spatial distribution of crystalline silicates in protoplanetary disks: How to interpret mid-infrared observations
- The effect of Jupiter on the CAI storage problem
- On the crystallinity of silicate dust in evolving protoplanetary disks due to magnetically driven disk winds