English

Velocity Structure and Molecular Formation in Polaris Molecular Cloud

Astrophysics of Galaxies 2025-02-18 v1 Solar and Stellar Astrophysics

Abstract

We present a wide-field (60\arcmin×30\arcmin)(60\arcmin \times 30\arcmin) study of a dense region within the Polaris Flare, hereafter referred to as the `Polaris molecular cloud', using 12^{12}CO, 13^{13}CO, and C18^{18}O (J=10J=1-0) observations at 20\arcsec20\arcsec resolution, obtained with the Nobeyama 45 m Radio Telescope. The analysis reveals molecular gas formation occurring at column densities up to 1021\sim10^{21} cm2^{-2}, evidenced by an anti-correlation between \textscHi\textsc{Hi} and CO distributions, indicating active atomic-to-molecular gas conversion. We found a threshold column density for molecular formation at 5×1020\sim5\times10^{20} cm2^{-2}, which is common among more evolved molecular clouds. The CO-to-H2_2 conversion factor, XCOX_{\rm CO}, was found to be 0.7×10200.7 \times 10^{20} H2_2 cm2^{-2} (K km s1)1^{-1})^{-1}, lower than the solar neighborhood average. Our chemical models estimate the cloud's age to be 105106\sim10^{5}-10^{6} years, suggesting an early stage of molecular cloud evolution. This interpretation is consistent with the observed low XCOX_{\rm CO} factor. While virial analysis suggests that the entire cloud is gravitationally unbound, we identified several filamentary structures extending from the main cloud body. These filaments show systematic velocity gradients of 0.51.50.5-1.5 km s1^{-1} pc1^{-1}, and analysis of the velocities shows that the molecular gas within them is falling toward the main cloud body, following a free-fall model. This suggests ongoing mass accumulation processes through the filaments, demonstrating that gravitational processes can be important even at column densities of 1021\sim10^{21} cm2^{-2}.

Keywords

Cite

@article{arxiv.2502.10668,
  title  = {Velocity Structure and Molecular Formation in Polaris Molecular Cloud},
  author = {Tomomi Shimoikura and Kazuhito Dobashi and Fumitaka Nakamura and Kotomi Taniguchi},
  journal= {arXiv preprint arXiv:2502.10668},
  year   = {2025}
}

Comments

10 pages, 14 figures

R2 v1 2026-06-28T21:45:14.802Z