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SpS1-Circumstellar disks & their evolution: Dust

Published online by Cambridge University Press:  21 October 2010

Carol A. Grady*
Affiliation:
Eureka Scientific & Goddard Space Flight Center, Greenbelt, MD 20771USA email: Carol.A.Grady@nasa.gov
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Circumstellar disks are an intrinsic part of star formation and are also where planets form, migrate, and where the materials capable of producing life-bearing worlds are produced. The most flamboyant signatures of the presence of disks are at infrared through millimeter wavelengths, where thermal emission from dust dominates the system light. The discovery and characterization of the emission from such disks has been a major activity for ground-based observatories and space missions (IRAS, ISO, MSX, AKARI, and Spitzer), and continues with the newest generation of infrared (IR) capabilities.

Type
Contributed Papers
Copyright
Copyright © International Astronomical Union 2010

References

Ábrahám, P. et al. , 2009, Nature 459, 224.CrossRefGoogle Scholar
Boogert, A. et al. , 2008, ApJ 678, 985.CrossRefGoogle Scholar
Bouwman, J. et al. , 2008, ApJ 683, 479.CrossRefGoogle Scholar
Brown, J. et al. , 2009, (this proceedings).Google Scholar
Chen, C. et al. , 2009, arXiv 0906.3744.CrossRefGoogle Scholar
Chen, C. et al. , 2008, ApJ 689, 539.CrossRefGoogle Scholar
Debes, J. et al. , 2008, ApJ 673, L191.CrossRefGoogle Scholar
Geers, V. et al. , 2006, A&A 459, 545.Google Scholar
Geers, V. et al. , 2007 A&A 476, 279.Google Scholar
Geers, V. et al. , 2009, A&A 495, 837.Google Scholar
Gibb, E. et al. , 2004, ApJS 151, 35.CrossRefGoogle Scholar
Habart, E. et al. , 2006, A&A 449, 1067.Google Scholar
Honda, M. et al. , 2009, ApJ (Letters) 690, L110.CrossRefGoogle Scholar
Keller, L. et al. , 2008 ApJ 684, 411.CrossRefGoogle Scholar
Leinert, Ch. et al. , 2004, A&A 423, 537.Google Scholar
Lisse, C. et al. , 2008, ApJ 673, 1106.CrossRefGoogle Scholar
Lisse, C. et al. , 2009, arXiv 0906.2536.CrossRefGoogle Scholar
Malfait, K. et al. , 1999, A&A 345, L181.Google Scholar
Moór, A. et al. , 2009, ApJ 700, L25.CrossRefGoogle Scholar
Morales, F. et al. , 2009, ApJ 699, 1067.CrossRefGoogle Scholar
Pascucci, I. & Tachibana, S. 2009, in Protoplanetary Dust: Astrochemical and Cosmochemical Perspectives Cambridge Planetary Science (No. 12), editors Apai, D. and Lauretta, D., (Cambridge: Cambridge University Press) (in press).Google Scholar
Pontoppidan, K. et al. , 2008, ApJ 678, 1005.CrossRefGoogle Scholar
Reidemeister, M. et al. , 2009, arXiv 0905.4688CrossRefGoogle Scholar
Sargent, B. et al. , 2009, ApJS 182, 477.CrossRefGoogle Scholar
Sitko, M. et al. , 2008, ApJ 678, 1070.CrossRefGoogle Scholar
van Boekel, R. et al. , 2006, Advances in Stellar Interferometry SPIE 6268, editors Monnier, J., Schöler, M., Danchi, W., E 13.Google Scholar
Woodward, C. et al. , 2004 Debris Disks and the Formation of Planets, ASP Conf. Ser. 324 editors Caroff, L., Moon, L. J., Backman, D., Praton, E. (ASP: San Francisco), p. 224.Google Scholar
Wyatt, M. C. 2008, ARA&A 46, 339.Google Scholar