Salt, Hot Water, and Silicon Compounds Tracing Massive Twin Disks
arXiv:2007.02962 · doi:10.3847/2041-8213/abadfc
Abstract
We report results of 0.05"-resolution observations toward the O-type proto-binary system IRAS 16547-4247 with the Atacama Large Millimeter/submillimeter Array (ALMA). We present dynamical and chemical structures of the circumbinary disk, circumstellar disks, outflows and jets, illustrated by multi-wavelength continuum and various molecular lines. In particular, we detect sodium chloride, silicon compounds, and vibrationally-excited water lines as probes of the individual protostellar disks at a scale of 100 au. These are complementary to typical hot-core molecules tracing the circumbinary structures on a 1000-au scale. The H2O line tracing inner-disks has an upper-state energy of Eu/k>3000K, indicating a high temperature of the disks. On the other hand, despite the detected transitions of NaCl, SiO, and SiS not necessarily having high upper-state energies, they are enhanced only in the vicinity of the protostars. We interpret that these molecules are the products of dust destruction, which only happens in the inner disks. This is the second detection of alkali metal halide in protostellar systems after the case of the disk of Orion Source I, and also one of few massive protostellar disks associated with high-energy transition water and silicon compounds. These new results suggest these "hot-disk" lines may be common in innermost disks around massive protostars, and have great potential for future research of massive star formation. We also tentatively find that the twin disks are counter-rotating, which might give a hint of the origin of the massive proto-binary system IRAS 16547-4247.
15 pages, 5 figures, 2 appendix figures. Published in ApJ Letters
References in corpus (23)
- Circumventing the radiation pressure barrier in the formation of massive stars via disk accretion
- On the existence of accretion-driven bursts in massive star formation
- Disk-Driven Rotating Bipolar Outflow in Orion Source I
- An Unstable Truth: How Massive Stars get their Mass
- The Early Evolution of Massive Stars: Radio Recombination Line Spectra
- The Turbulent Origin of Outflow and Spin Misalignment in Multiple Star Systems
- Forming spectroscopic massive proto-binaries by disk fragmentation
- Substructures in the Keplerian disc around the O-type (proto)star G17.64+0.16
- The Impact of Feedback During Massive Star Formation by Core Accretion
- The Role of Outflows, Radiation Pressure, and Magnetic Fields in Massive Star Formation
- The Collimated Jet Source in IRAS 16547-4247: Time Variation, Possible Precession, and Upper Limits to the Proper Motions Along the Jet Axis
- Spiral arms and instability within the AFGL 4176 mm1 disc
- An Asymmetric Keplerian Disk Surrounding the O-type Protostar IRAS165474247
- Orion Source I's disk is salty
- ALMA reveals a candidate hot and compact disk around the O-type protostar IRAS 165474247
- The first bird's-eye view of a gravitationally unstable accretion disk in high-mass star formation
- The Rotating Molecular Structures and the Ionized Outflow Associated with IRAS 16547-4247
- Dynamics of a Massive Binary at Birth
- Discovery of a Photoionized Bipolar Outflow towards the Massive Protostar G45.47+0.05
- Twin Jets and Close Binary Formation
- Observations of Orion Source I Disk and Outflow Interface
- IRAS16547-4247: A New Candidate of a Protocluster Unveiled with ALMA
- Disks around O-type young stellar objects