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G11.92−0.61 MM1: a Keplerian disc around a massive young proto-O star

2016/08/09 by J. D. Ilee, John D. Ilee, C. J. Cyganowski +8 · 1 citation
Chemistry · Physics and Astronomy · #Accretion (finance) #Astronomy #Astrophysics #Astrophysics and Star Formation Studies #Bipolar outflow #Emission spectrum #Galaxy #Molecular Spectroscopy and Structure #Optics #Outflow #Physics #Spectral energy distribution #Spectral line #Star formation #Stars #Stellar, planetary, and galactic studies #Submillimeter Array #Wavelength #astro-ph.GA #astro-ph.SR

paper · pdf · doi:10.1093/mnras/stw1912

18 pages, 9 figures. Accepted to MNRAS

openalex publication_date 2016/08/09 · arxiv created 2016/08/19 · arxiv updated 2016/08/22 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

The formation process of massive stars is not well understood, and advancement in our understanding benefits from high-resolution observations and modelling of the gas and dust surrounding individual high-mass (proto)stars. Here, we report subarcsecond (≲1550 au) resolution observations of the young massive star G11.92−0.61 MM1 with the Submillimeter Array (SMA) and Very Large Array (VLA). Our 1.3 mm SMA observations reveal consistent velocity gradients in compact molecular line emission from species such as CH3CN, CH3OH, OCS, HNCO, H2CO, DCN and CH3CH2CN, oriented perpendicular to the previously reported bipolar molecular outflow from MM1. Modelling of the compact gas kinematics suggests a structure undergoing rotation around the peak of the dust continuum emission. The rotational profile can be well fitted by a model of a Keplerian disc, including infall, surrounding an enclosed mass of ∼30–60 M⊙, of which 2–3 M⊙ is attributed to the disc. From modelling the CH3CN emission, we determine that two temperature components, of ∼150 K and 230 K, are required to adequately reproduce the spectra. Our 0.9 and 3.0 cm VLA continuum data exhibit an excess above the level expected from dust emission; the full centimetre–submillimetre wavelength spectral energy distribution of MM1 is well reproduced by a model including dust emission, an unresolved hypercompact H ii region, and a compact ionized jet. In combination, our results suggest that MM1 is an example of a massive proto-O star forming via disc accretion, in a similar way to that of lower mass stars.

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