English

Rapid Elimination of Small Dust Grains in Molecular Clouds

Astrophysics of Galaxies 2020-09-30 v2

Abstract

We argue that impact velocities between dust grains with sizes less than 0.1\sim 0.1 μm\mu m in molecular cloud cores are dominated by drift arising from ambipolar diffusion. This effect is due to the size dependence of the dust coupling to the magnetic field and the neutral gas. Assuming perfect sticking in collisions up to 50\approx 50 m/s, we show that this effect causes rapid depletion of small grains - consistent with starlight extinction and IR/microwave emission measurements, both in the core center (n106n \sim 10^{6} cm3^{-3}) and envelope (n104n \sim 10^{4} cm3^{-3}). The upper end of the size distribution does not change significantly if only velocities arising from this effect are considered. We consider the impact of an evolved dust size distribution on the gas temperature, and argue that if the depletion of small dust grains occurs as would be expected from our model, then the cosmic ray ionization rate must be well below 101610^{-16} s1^{-1} at a number density of 10510^{5} cm3^{-3}.

Keywords

Cite

@article{arxiv.2006.13225,
  title  = {Rapid Elimination of Small Dust Grains in Molecular Clouds},
  author = {Kedron Silsbee and Alexei Ivlev and Paola Caselli and Olli Sipila and Bo Zhao},
  journal= {arXiv preprint arXiv:2006.13225},
  year   = {2020}
}