Completing the Protostellar Luminosity Function in Cygnus-X with SOFIA/FORCAST Imaging
arXiv:2202.06803 · doi:10.1093/mnras/stac436
Abstract
We present a new SOFIA/FORCAST mid-IR survey of luminous protostars and crowded star-forming environments in Cygnus X, the nearest million-solar mass molecular cloud complex. We derive bolometric luminosities for over 1000 sources in the region with these new data in combination with extant Spitzer and UKIDSS photometry, with 63 new luminous protostar candidates identified by way of the high quality SOFIA/FORCAST data. By including FORCAST data, we construct protostellar luminosity functions (PLFs) with improved completeness at the high luminosity end. The PLFs are well described by a power law function with an index of ~-0.5. Based on the Herschel temperature and column density measurements, we find no obvious dependence of the PLFs on the local gas temperature, but PLFs in regions of high stellar density or gas column density exhibit some excess at higher luminosities. Through the comparison between our observed PLFs and existing accretion models, both the turbulent core (TC) and the competitive accretion (CA) models are consistent with our results, while the isothermal sphere (IS) model is disfavored. The implications of these results on the star formation process are discussed.
20 pages, 21 figures, Accepted for publication in MNRAS
References in corpus (9)
- A Spitzer Survey of Young Stellar Clusters within One Kiloparsec of the Sun: Cluster Core Extraction and Basic Structural Analysis
- Spitzer Observations of NGC 1333: A Study of Structure and Evolution in a Nearby Embedded Cluster
- A Spitzer census of the IC 348 nebula
- A 24 Micron Point Source Catalog of the Galactic Plane from Spitzer/MIPSGAL
- Infall-Driven Protostellar Accretion and the Solution to the Luminosity Problem
- Impact of Protostellar Outflows on Turbulence and Star Formation Efficiency in Magnetized Dense Cores
- The Formation of Stellar Clusters in Magnetized, Filamentary Infrared Dark Clouds
- Star-Gas Surface Density Correlations in Twelve Nearby Molecular Clouds I: Data Collection and Star-Sampled Analysis
- The Origin of the Stellar Mass Distribution and Multiplicity