English

Vacuum-UV photodesorption from compact Amorphous Solid Water : photon energy, isotopic and temperature effects

Chemical Physics 2021-03-30 v1 Earth and Planetary Astrophysics Astrophysics of Galaxies

Abstract

Vacuum-UV (VUV) photodesorption from water-rich ice mantles coating interstellar grains is known to play an important role in the gas-to-ice ratio in star- and planet-forming regions. Quantitative photodesorption yields from water ice are crucial for astrochemical models. We aim to provide the first quantitative photon-energy dependent photodesorption yields from water ice in the VUV. This information is important to understand the photodesorption mechanisms and to account for the variation of the yields under interstellar irradiation conditions. Experiments have been performed on the DESIRS beamline at the SOLEIL synchrotron, delivering tunable VUV light, using the SPICES (Surface Processes and ICES) set-up. Compact amorphous solid water ice (H2_2O and D2_2O) has been irradiated from 7 to 13.5 eV. Quantitative yields have been obtained by detection in the gas phase with mass-spectrometry for sample temperatures ranging from 15 K to 100 K. Photodesorption spectra of H2_2O (D2_2O), OH (OD), H2_2 (D2_2) and O2_2 peak around 9-10 eV and decrease at higher energies. Average photodesorption yields of intact water at 15 K are 5 ×\times 104^{-4} molecule/photon for H2_2O and 5 ×\times 105^{-5} molecule/photon for D2_2O over the 7-13.5 eV range. The strong isotopic effect can be explained by a differential chemical recombination between OH (OD) and H (D) photofragments originating from lower kinetic energy available for the OH photofragments upon direct water photodissociation and/or possibly by an electronic relaxation process. It is expected to contribute to water fractionation during the building-up of the ice grain mantles in molecular clouds and to favor OH-poor chemical environment in comet-formation regions of protoplanetary disks. The yields of all the detected species except OH (OD) are enhanced above (70 ±\pm10) K, suggesting an ice restructuration at this temperature.

Keywords

Cite

@article{arxiv.2103.15435,
  title  = {Vacuum-UV photodesorption from compact Amorphous Solid Water : photon energy, isotopic and temperature effects},
  author = {Jean-Hugues Fillion and Rémi Dupuy and Géraldine Féraud and Claire Romanzin and Laurent Philippe and Thomas Putaud and Vincent Baglin and Roberto Cimino and Patrick Marie-Jeanne and Pascal Jeseck and Xavier Michaut and Mathieu Bertin},
  journal= {arXiv preprint arXiv:2103.15435},
  year   = {2021}
}

Comments

Submitted to A&A. In revision

R2 v1 2026-06-24T00:38:28.079Z