Abundance ratios of OH/CO and HCO+/CO as probes of the cosmic ray ionization rate in diffuse clouds
arXiv:2302.12970 · doi:10.3847/1538-4357/acbf34
Abstract
The cosmic-ray ionization rate (CRIR, ) is one of the key parameters controlling the formation and destruction of various molecules in molecular clouds. However, the current most commonly used CRIR tracers, such as H, OH, and HO, are hard to detect and require the presence of background massive stars for absorption measurements. In this work, we propose an alternative method to infer the CRIR in diffuse clouds using the abundance ratios of OH/CO and HCO/CO. We have analyzed the response of chemical abundances of CO, OH, and HCO on various environmental parameters of the interstellar medium in diffuse clouds and found that their abundances are proportional to . Our analytic expressions give an excellent calculation of the abundance of OH for 10 s, which are potentially useful for modelling chemistry in hydrodynamical simulations. The abundances of OH and HCO were found to monotonically decrease with increasing density, while the CO abundance shows the opposite trend. With high-sensitivity absorption transitions of both CO (1--0) and (2--1) lines from ALMA, we have derived the H number densities () toward 4 line-of-sights (LOSs); assuming a kinetic temperature of , we find a range of (0.140.03--1.20.1)10 cm}. By comparing the observed and modelled HCO/CO ratios, we find that in our diffuse gas sample is in the { range of 10 10 s. This is 2 times higher than the average value measured at higher extinction, supporting an attenuation of CRs as suggested by theoretical models.
22 pages, 9 figures, accepted by ApJ
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