Observational evidence for composite grains in an AGB outflow: MgS in the extreme carbon star LL Peg
arXiv:1207.1606 · doi:10.1051/0004-6361/201219782
Abstract
The broad 30 μm feature in carbon stars is commonly attributed to MgS dust particles. However, reproducing the 30 μm feature with homogeneous MgS grains would require much more sulfur relative to the solar abundance. Direct gas-phase condensation of MgS occurs at a low efficiency. Precipitation of MgS on SiC precursor grains provides a more efficient formation mechanism, such that the assumption of homogeneous MgS grains may not be correct. Using a Monte Carlo-based radiative transfer code, we aim to model the 30 μm feature of the extreme carbon star LL Peg with MgS dust particles. We find that for LL Peg this modeling is insensitive to the unknown MgS optical properties at λ< 10 μm. When MgS is allowed to be in thermal contact with amorphous carbon and SiC, the amount of MgS required to reproduce the strength of 30 μm feature agrees with the solar abundance of sulfur, thereby resolving the reported MgS mass problem. We conclude that MgS is a valid candidate to be the carrier of the 30 μm feature when it is part of a composite grain population that has optical properties representative of an ensemble of particle shapes.
5 pages, 5 figures, accepted for publication in Astronomy & Astrophysics
References in corpus (7)
- The chemical composition of the Sun
- Radiative transfer in very optically thick circumstellar disks
- Imaging the circumstellar envelopes of AGB stars
- Circumstellar molecular composition of the oxygen-rich AGB star IK~Tau: II. In-depth non-LTE chemical abundance analysis
- The infrared emission spectra of compositionally inhomogeneous aggregates composed of irregularly shaped constituents
- The 10 m infrared band of silicate dust: A laboratory study comparing the aerosol and KBr pellet techniques
- On Magnesium Sulfide as the Carrier of the 30micron Emission Feature in Evolved Stars
Cited by in corpus (8)
- The SAGE-Spec Spitzer Legacy program: The life-cycle of dust and gas in the Large Magellanic Cloud. Point source classification I
- Physical Properties of Fullerene-containing Galactic Planetary Nebulae
- Luminosities and mass-loss rates of Local Group AGB stars and Red Supergiants
- Spitzer Infrared Spectrographic point source classification in the Small Magellanic Cloud
- Constraining dust properties in Circumstellar Envelopes of C-stars in the Small Magellanic Cloud: optical constants and grain size of Carbon dust
- Constraints on the H2O formation mechanism in the wind of carbon-rich AGB stars
- Molecular gas in 21 and 30 micron sources: the 2\,mm and 1.3\,mm spectra of IRAS\,21318+5631 and 22272+5435
- Unidentified species in envelopes around carbon stars