English

Chemical abundance gradients of organic molecules within a protostellar disk

Earth and Planetary Astrophysics 2024-08-02 v1 Astrophysics of Galaxies Solar and Stellar Astrophysics

Abstract

Observations of low-mass protostellar systems show evidence of rich complex organic chemistry. Their low luminosity, however, makes determining abundance distributions of complex organic molecules (COMs) within the water snowline challenging. However, the excitation conditions sampled by differing molecular distributions may produce substantive changes in the resulting emission. Thus, molecular excitation may recover spatial information from spatially unresolved data. By analyzing spatially-unresolved NOrthern Extended Millimeter Array (NOEMA) observations of CH3_3OH and CH3_3CN, we aim to determine if CH3_3OH and CH3_3CN are distributed differently in the protostellar disk around HOPS-370, a highly-luminous intermediate mass protostar. Rotational diagram analysis of CH3_3OH and CH3_3CN yields rotational temperatures of 198±1.2198 \pm 1.2 K and 448±19448 \pm 19 K, respectively, suggesting the two molecules have different spatial distributions. Source-specific 3D LTE radiative transfer models are used to constrain the spatial distribution of CH3_3OH and CH3_3CN within the disk. A uniform distribution with an abundance of 4×1084\times10^{-8} reproduces the CH3_3OH observations. In contrast, the spatial distribution of CH3_3CN needs to be either more compact (within 120\sim120 au versus 240\sim240 au for CH3_3OH) or exhibiting a factor of 15\gtrsim 15 increase in abundance in the inner 55\sim55 au. A possible explanation for the difference in spatial abundance distributions of CH3_3OH and CH3_3CN is carbon-grain sublimation.

Keywords

Cite

@article{arxiv.2408.00070,
  title  = {Chemical abundance gradients of organic molecules within a protostellar disk},
  author = {Levi G. Walls and Merel L. R. van 't Hoff and Edwin A. Bergin},
  journal= {arXiv preprint arXiv:2408.00070},
  year   = {2024}
}

Comments

Accepted for publication in ApJ: 18 pages, 9 figures, 4 tables