Production and loss of the water-related species H3O +, H2O and OH in dense interstellar clouds
Ted L. Williams, Nigel G. Adams, L BABCOCK, C. R. Herd, Mark Geoghegan
Abstract
Ted L. Williams, Nigel G. Adams, L BABCOCK, C. R. Herd, Mark Geoghegan
Abstract
Following the recent determinations of the fractional abundances of H3O+ and H2O in dense interstellar clouds, the production and loss processes for these species have been investigated in the laboratory. The major processes involved are dissociative electron recombination of H3O+ and proton transfer to and from H2O. The complete product distribution for the H3O+ recombination has now been determined and leads to the product channels OH + H2(0.36), OH+2H(0.29) and O + H + H2(0.30) with the channel H + H2O(0.05) being much smaller than previously assumed. It has been shown that loss of H2O+ by proton transfer to a series of sulphur-containing species with larger proton affinities is very efficient and also non-dissociative, further establishing the trend for proton transfer reactions involving this ion. These data have been used in a limited model to predict the fractional abundance of H2O and the relative abundances of H2O and H3O+ in Sgr B2. Predictions are also made for other dense interstellar clouds.
OpenAlex reports 80 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Following the recent determinations of the fractional abundances of H3O+ and H2O in dense interstellar clouds, the production and loss processes for these species have been investigated in the laboratory. The major processes involved are dissociative electron recombination of H3O+ and proton transfer to and from H2O. The complete product distribution for the H3O+ recombination has now been determined and leads to the product channels OH + H2(0.36), OH+2H(0.29) and O + H + H2(0.30) with the channel H + H2O(0.05) being much smaller than previously assumed. It has been shown that loss of H2O+ by proton transfer to a series of sulphur-containing species with larger proton affinities is very efficient and also non-dissociative, further establishing the trend for proton transfer reactions involving this ion. These data have been used in a limited model to predict the fractional abundance of H2O and the relative abundances of H2O and H3O+ in Sgr B2. Predictions are also made for other dense interstellar clouds.
Key concepts: Dissociative recombination, Physics, Interstellar cloud, Proton, Astrochemistry, Ion, Astrophysics, Interstellar medium