The Astrophysical Journal (Jan 2022)

The SOFIA Massive (SOMA) Star Formation Survey. IV. Isolated Protostars

  • Rubén Fedriani,
  • Jonathan C. Tan,
  • Zoie Telkamp,
  • Yichen Zhang,
  • Yao-Lun Yang,
  • Mengyao Liu,
  • James M. De Buizer,
  • Chi-Yan Law,
  • Maria T. Beltran,
  • Viviana Rosero,
  • Kei E. I. Tanaka,
  • Giuliana Cosentino,
  • Prasanta Gorai,
  • Juan Farias,
  • Jan E. Staff,
  • Barbara Whitney

DOI
https://doi.org/10.3847/1538-4357/aca4cf
Journal volume & issue
Vol. 942, no. 1
p. 7

Abstract

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We present ∼10–40 μ m SOFIA-FORCAST images of 11 isolated protostars as part of the SOFIA Massive (SOMA) Star Formation Survey, with this morphological classification based on 37 μ m imaging. We develop an automated method to define source aperture size using the gradient of its background-subtracted enclosed flux and apply this to build spectral energy distributions (SEDs). We fit the SEDs with radiative transfer models, developed within the framework of turbulent core accretion (TCA) theory, to estimate key protostellar properties. Here, we release the sedcreator python package that carries out these methods. The SEDs are generally well fitted by the TCA models, from which we infer initial core masses M _c ranging from 20–430 M _⊙ , clump mass surface densities Σ _cl ∼ 0.3–1.7 g cm ^−2 , and current protostellar masses m _* ∼ 3–50 M _⊙ . From a uniform analysis of the 40 sources in the full SOMA survey to date, we find that massive protostars form across a wide range of clump mass surface density environments, placing constraints on theories that predict a minimum threshold Σ _cl for massive star formation. However, the upper end of the m _* −Σ _cl distribution follows trends predicted by models of internal protostellar feedback that find greater star formation efficiency in higher Σ _cl conditions. We also investigate protostellar far-IR variability by comparison with IRAS data, finding no significant variation over an ∼40 yr baseline.

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