English

The impact of freeze-out on collapsing molecular clouds

Solar and Stellar Astrophysics 2015-06-17 v2 Astrophysics of Galaxies

Abstract

Atoms and molecules, and in particular CO, are important coolants during the evolution of interstellar star-forming gas clouds. The presence of dust grains, which allow many chemical reactions to occur on their surfaces, strongly impacts the chemical composition of a cloud. At low temperatures, dust grains can lock-up species from the gas phase which freeze out and form ices. In this sense, dust can deplete important coolants. Our aim is to understand the effects of freeze-out on the thermal balance and the evolution of a gravitationally bound molecular cloud. For this purpose, we perform 3D hydrodynamical simulations with the adaptive mesh code FLASH. We simulate a gravitationally unstable cloud under two different conditions, with and without grain surface chemistry. We let the cloud evolve until one free-fall time is reached and track the thermal evolution and the abundances of species during this time. We see that at a number density of 104^4 cm3^{-3} most of the CO molecules are frozen on dust grains in the run with grain surface chemistry, thereby depriving the most important coolant. As a consequence, we find that the temperature of the gas rises up to \sim25 K. The temperature drops once again due to gas-grain collisional cooling when the density reaches a few×\times104^4 cm3^{-3}. We conclude that grain surface chemistry not only affects the chemical abundances in the gas phase, but also leaves a distinct imprint in the thermal evolution that impacts the fragmentation of a star-forming cloud. As a final step, we present the equation of state of a collapsing molecular cloud that has grain surface chemistry included.

Keywords

Cite

@article{arxiv.1310.8466,
  title  = {The impact of freeze-out on collapsing molecular clouds},
  author = {S. Hocuk and S. Cazaux and M. Spaans},
  journal= {arXiv preprint arXiv:1310.8466},
  year   = {2015}
}

Comments

Increased the number of significant digits in EQ 2. It mattered. Accepted for publication in MNRAS letters