FIRST TIME-DEPENDENT STUDY OF H sub(2) AND H super(+) sub(3) ORTHO-PARA CHEMISTRY IN THE DIFFUSE INTERSTELLAR MEDIUM: OBSERVATIONS MEET THEORETICAL PREDICTIONS

The chemistry in the diffuse interstellar medium (ISM) initiates the gradual increase of molecular complexity during the life cycle of matter. A key molecule that enables build-up of new molecular bonds and new molecules via proton donation is H super(+) sub(3). Its evolution is tightly related to m...

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Veröffentlicht in:The Astrophysical journal 2014-05, Vol.787 (1), p.1-10
Hauptverfasser: Albertsson, T, INDRIOLO, N, Kreckel, H, Semenov, D, Crabtree, K N, Henning, Th
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Sprache:eng
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Zusammenfassung:The chemistry in the diffuse interstellar medium (ISM) initiates the gradual increase of molecular complexity during the life cycle of matter. A key molecule that enables build-up of new molecular bonds and new molecules via proton donation is H super(+) sub(3). Its evolution is tightly related to molecular hydrogen and thought to be well understood. However, recent observations of ortho and para lines of H sub(2) and H super(+) sub(3) in the diffuse ISM showed a puzzling discrepancy in nuclear spin excitation temperatures and populations between these two key species. H super(+) sub(3), unlike H sub(2), seems to be out of thermal equilibrium, contrary to the predictions of modern astrochemical models. We conduct the first time-dependent modeling of the para-fractions of H sub(2) and H super(+) sub(3) in the diffuse ISM and compare our results to a set of line-of-sight observations, including new measurements presented in this study. We isolate a set of key reactions for H super(+) sub(3) and find that the destruction of the lowest rotational states of H super(+) sub(3) by dissociative recombination largely controls its ortho/para ratio. A plausible agreement with observations cannot be achieved unless a ratio larger than 1:5 for the destruction of (1, 1)- and (1, 0)-states of H super(+) sub(3) is assumed. Additionally, an increased cosmic-ray ionization rate to 10 super(-15) s super(-1) further improves the fit whereas variations of other individual physical parameters, such as density and chemical age, have only a minor effect on the predicted ortho/para ratios. Thus, our study calls for new laboratory measurements of the dissociative recombination rate and branching ratio of the key ion H super(+) sub(3) under interstellar conditions.
ISSN:0004-637X
1538-4357
DOI:10.1088/0004-637X/787/1/44