Observational Constraints on Dust Disk Lifetimes: Implications for Planet Formation
arXiv:astro-ph/0511083
Abstract
(abridged) Thus far our impressions regarding the evolutionary time scales for young circumstellar disks have been based on small number statistics. Over the past decade, however, in addition to precision study of individual star/disk systems, substantial observational effort has been invested in obtaining less detailed data on large numbers of objects in young star clusters. This has resulted in a plethora of information now enabling statistical studies of disk evolutionary diagnostics. Along an ordinate one can measure disk presence or strength through indicators such as ultraviolet/blue excess or spectroscopic emission lines tracing accretion, infrared excess tracing dust, or millimeter flux measuring mass. Along an abscissa one can track stellar age. While bulk trends in disk indicators versus age are evident, observational errors affecting both axes, combined with systematic errors in our understanding of stellar ages, both cloud and bias any such trends Thus detailed understanding of the physical processes involved in disk dissipation and of the relevant time scales remains elusive. Nevertheless, a clear effect in current data that is unlikely to be altered by data analysis improvements is the dispersion in disk lifetimes. The age at which evidence for inner accretion disks ceases to be apparent for the vast majority (90%) of stars is in the range 3-8 Myr. More distant, terrestrial zone dust is traced by mid-infrared emission where sufficient sensitivity and uniform data collection are only now being realized with data return from the Spitzer Space Telescope.
review article to appear in "A Decade of Discovery: Planets Around Other Stars" STScI Symposium Series 19, ed. M. Livio
Cited by in corpus (15)
- Initial Conditions of Planet Formation: Lifetimes of Primordial Disks
- Parameters of Herbig Ae/Be and Vega-type stars
- Angular Momentum Transport In Solar-Type Stars: Testing the Timescale For Core-Envelope Coupling
- No wide spread of stellar ages in the Orion Nebula Cluster
- High-Contrast Observations in Optical and Infrared Astronomy
- Short Lifetime of Protoplanetary Disks in Low-metallicity Environments
- Consequences of the simultaneous formation of giant planets by the core accretion mechanism
- WISE J080822.18-644357.3 - a 45 Myr-old accreting M dwarf hosting a primordial disc
- Accretion discs as regulators of stellar angular momentum evolution in the ONC and Taurus-Auriga
- Low-metallicity Young Clusters in the Outer Galaxy. II. Sh 2-208
- The role of the initial surface density profiles of the disc on giant planet formation: comparing with observations
- Spectroscopic characterization of X-ray emitting young stars associated with the Sh 2-296 nebula
- Stellar contents and Star formation in the young cluster Stock 18
- Properties of the short period CoRoT-planet population II: The impact of loss processes on planet masses from Neptunes to Jupiters
- The timescale for giant planet formation : constraints from the rotational evolution of exoplanet host stars