English

Ortho-para-H$_2$ conversion processes in astrophysical media

Chemical Physics 2014-02-24 v1

Abstract

We report in this review recent fully-quantum time-independent calculations of cross sections and rate constants for the gas phase ortho-to-para conversion of H2_2 by H and H+^+. Such processes are of crucial interest and importance in various astrophysical environments. The investigated temperature ranges was 10-1500 K for H+H2_2 and 10-100 K for H+^++H2_2. Calculations were based on highly accurate H3_3 and H3+_3^+ global potential energy surfaces. Comparisons with previous calculations and with available measurements are presented and discussed. It is shown that the existence of a long-lived intermediate complex H3+_3^+ in the (barrierless) H+^++H2_2 reaction give rise to a pronounced resonance structure and a statistical behaviour, in contrast to H+H2_2 which proceeds through a barrier of 5000\sim 5000 K. In the cold interstellar medium (T100T\leq 100 K), the ortho-to-para conversion is thus driven by proton exchange while above \sim300 K, the contribution of hydrogen atoms become significant or even dominant. Astrophysical applications are briefly discussed by comparing, in particular, the relative role of the conversion processes in the gas phase ({\it via} H, H+^+, H2_2 and H3+_3^+) and on the surface of dust particles. Perspectives concerning future calculations at higher temperatures are outlined.

Keywords

Cite

@article{arxiv.1402.5292,
  title  = {Ortho-para-H$_2$ conversion processes in astrophysical media},
  author = {François Lique and Pascal Honvault and Alexandre Faure},
  journal= {arXiv preprint arXiv:1402.5292},
  year   = {2014}
}

Comments

34 pages, 7 fugures

R2 v1 2026-06-22T03:13:08.430Z