Fragmentation in the massive G31.41+0.31 protocluster
arXiv:2103.04953 · doi:10.1051/0004-6361/202040121
Abstract
Context. ALMA observations at 1.4 mm and 0.2'' (750au) angular resolution of the Main core in the high-mass star forming region G31.41+0.31 have revealed a puzzling scenario: on the one hand, the continuum emission looks very homogeneous and the core appears to undergo solid-body rotation, suggesting a monolithic core stabilized by the magnetic field; on the other hand, rotation and infall speed up toward the core center, where two massive embedded free-free continuum sources have been detected, pointing to an unstable core having undergone fragmentation. Aims. To establish whether the Main core is indeed monolithic or its homogeneous appearance is due to a combination of large dust opacity and low angular resolution, we carried out millimeter observations at higher angular resolution and different wavelengths. Methods. We carried out ALMA observations at 1.4 mm and 3.5 mm that achieved angular resolutions of 0.1''(375 au) and 0.075'' (280 au), respectively. VLA observations at 7 mm and 1.3 cm at even higher angular resolution, 0.05'' (190 au) and 0.07'' (260 au), respectively, were also carried out to better study the nature of the free-free continuum sources detected in the core. Results. The millimeter continuum emission of the Main core has been clearly resolved into at least four sources, A, B, C, and D, within 1'', indicating that the core is not monolithic. The deconvolved radii of the dust emission of the sources, estimated at 3.5 mm, are 400-500au, their masses range from 15 to 26 Msun, and their number densities are several 1E9 cm-3. Sources A and B, located closer to the center of the core and separated by 750 au, are clearly associated with two free-free continuum sources, likely thermal radio jets, and are the brightest in the core. The spectral energy distribution of these two sources and their masses and sizes are similar and suggest a common origin.
18 pages,9 figures, 5 tables. Accepted by A&A
References in corpus (12)
- Star formation through gravitational collapse and competitive accretion
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- The Fragmentation of Magnetized, Massive Star-Forming Cores with Radiative Feedback
- The effect of magnetic fields on star cluster formation
- The formation of ethylene glycol and other complex organic molecules in star-forming regions
- Deuteration and evolution in the massive star formation process: the role of surface chemistry
- Comparative study of complex N- and O-bearing molecules in hot molecular cores
- The Physical and chemical structure of Sagittarius B2 -- IV. Converging filaments in the high-mass cluster forming region Sgr B2(N)
- Anomalous peculiar motions of high-mass young stars in the Scutum spiral arm
- A high resolution study of complex organic molecules in hot cores
- The turbulent life of dust grains in the supernova-driven, multi-phase interstellar medium
Cited by in corpus (5)
- The GUAPOS project II. A comprehensive study of peptide-like bond molecules
- ATOMS: ALMA Three-millimeter Observations of Massive Star-forming regions -- XII: Fragmentation and multi-scale gas kinematics in protoclusters G12.42+0.50 and G19.88-0.53
- Cloud-cloud collision as origin of the G31.41+0.31 massive protocluster
- The sharp ALMA view of infall and outflow in the massive protocluster G31.41+0.31
- Alignment of dense molecular core morphology and velocity gradients with ambient magnetic fields