Fragmentation of Molecular Clumps and Formation of Protocluster
arXiv:1503.03017 · doi:10.1088/0004-637X/804/2/141
Abstract
Sufficiently massive clumps of molecular gas collapse under self-gravity and fragment to spawn a cluster of stars that have a range of masses. We investigate observationally the early stages of formation of a stellar cluster in a massive filamentary infrared dark cloud, G28.34+0.06 P1, in the 1.3mm continuum and spectral line emission using the ALMA. Sensitive continuum data reveal further fragmentation in five dusty cores at a resolution of several 10^3 AU. Spectral line emission from C18O, CH3OH, 13CS, H2CO and N2D+ are detected for the first time toward these dense cores. We found that three cores are chemically more evolved as compared with the other two; interestingly though, all of them are associated with collimated outflows as suggested by evidence from the CO, SiO, CH3OH, H2CO and SO emissions. The parsec-scale kinematics in NH3 exhibit velocity gradients along the filament, consistent with accretion flows toward the clumps and cores. The moderate luminosity and the chemical signatures indicate that the five cores harbor low- to intermediate-mass protostars that likely become massive ones at the end of the accretion. Despite the fact that the mass limit reached by the 1σdust continuum sensitivity is 30 times lower than the thermal Jeans mass, there is a lack of a distributed low-mass protostellar population in the clump. Our observations indicate that in a protocluster, low-mass stars form at a later stage after the birth of more massive protostars.
Accepted for publication in Astrophysical Journal
References in corpus (21)
- Cold Dark Clouds: The Initial Conditions for Star Formation
- Filamentary structure of star-forming complexes
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- The Large and Small Scale Structures of Dust in the Star-Forming Perseus Molecular Cloud
- Magnetic Fields in High-Mass Infrared Dark Clouds
- Magnetic Fields and Massive Star Formation
- Class 0 Protostars in the Perseus Molecular Cloud: A Correlation Between the Youngest Protostars and the Dense Gas Distribution
- Evolution of Magnetic Fields in High Mass Star Formation: Linking field geometry and collapse for the W51 e2/e8 cores
- Multiple Jets from the High-Mass (Proto)stellar Cluster AFGL5142
- NH3 Observations of the Infrared Dark Cloud G28.34+0.06
- Probing the initial conditions of High Mass Star formation -- I. Deuteration and depletion in high mass pre/protocluster clumps
- VLA observations of ammonia in high-mass star formation regions
- Accurate water maser positions from HOPS
- Dust and gas emission in the prototypical hot core G29.96-0.02 at sub-arcsecond resolution
- Submillimeter Array Observations of Magnetic Fields in G240.31+0.07: an Hourglass in a Massive Cluster-forming Core
- Interferometric multi-wavelength (sub)millimeter continuum study of the young high-mass protocluster IRAS05358+3543
- SMA observations of Infrared Dark Clouds: A tale of two cores
- The Importance of the Magnetic Field from an SMA-CSO-Combined Sample of Star-Forming Regions
- High Resolution Imaging of Molecular Outflows in Massive Young Stars
- Shaping a high-mass star-forming cluster through stellar feedback. The case of the NGC 7538 IRS 1-3 complex
- A dense micro-cluster of Class 0 protostars in NGC 2264 D-MM1