English

The cosmic ray ionization rate in the Galactic disk, as determined from observations of molecular ions

Astrophysics of Galaxies 2017-08-30 v1

Abstract

We have obtained estimates for the cosmic-ray ionization rate (CRIR) in the Galactic disk, using a detailed model for the physics and chemistry of diffuse interstellar gas clouds to interpret previously-published measurements of the abundance of four molecular ions: ArH+^+, OH+^+, H2_2O+^+ and H3+_3^+. For diffuse atomicatomic clouds at Galactocentric distances in the range Rg49R_g \sim 4 - 9 kpc, observations of ArH+^+, OH+^+, and H2_2O+^+ imply a mean primary CRIR of (2.2±0.3)exp[(R0Rg)/4.7kpc]×1016s1(2.2 \pm 0.3) \exp [(R_0-R_g)/4.7\,\rm{kpc}] \times 10^{-16} \rm \, s^{-1} per hydrogen atom, where R0=8.5R_0=8.5 kpc. Within diffuse molecularmolecular clouds observed toward stars in the solar neighborhood, measurements of H3+_3^+ and H2_2 imply a primary CRIR of (2.3±0.6)×1016s1(2.3 \pm 0.6) \times 10^{-16}\,\,\rm s^{-1} per H atom, corresponding to a total ionization rate per H2_2 molecule of (5.3±1.1)×1016s1,(5.3 \pm 1.1) \times 10^{-16}\,\,\rm s^{-1}, in good accord with previous estimates. These estimates are also in good agreement with a rederivation, presented here, of the CRIR implied by recent observations of carbon and hydrogen radio recombination lines along the sight-line to Cas A. Here, our best-fit estimate for the primary CRIR is 2.9×1016s12.9 \times 10^{-16}\,\,\rm s^{-1} per H atom. Our results show marginal evidence that the CRIR in diffuse molecular clouds decreases with cloud extinction, AV(tot)A_{\rm V}({\rm tot}), with a best-fit dependence AV(tot)1\propto A_{\rm V}({\rm tot})^{-1} for AV(tot)0.5A_{\rm V}({\rm tot}) \ge 0.5.

Keywords

Cite

@article{arxiv.1704.03877,
  title  = {The cosmic ray ionization rate in the Galactic disk, as determined from observations of molecular ions},
  author = {David A. Neufeld and Mark G. Wolfire},
  journal= {arXiv preprint arXiv:1704.03877},
  year   = {2017}
}

Comments

48 pages, including 3 tables (at end) and 13 figures. Accepted for publication in the Astrophysical Journal