TY - JOUR
T1 - Thermal desorption of water ice in the interstellar medium
AU - Fraser, Helen J.
AU - Collings, Mark P.
AU - McCoustra, Martin R.S.
AU - Williams, David A.
PY - 2001/11/7
Y1 - 2001/11/7
N2 - Water (H2O) ice is an important solid constituent of many astrophysical environments. To comprehend the role of such ices in the chemistry and evolution of dense molecular
clouds and comets, it is necessary to understand the freeze-out, potential surface reactivity, and desorption mechanisms of such molecular systems. Consequently, there is
a real need from within the astronomical modelling community for accurate empirical molecular data pertaining to these processes. Here we give the first results of a laboratory programme to provide such data. Measurements of the thermal desorption of H2O ice, under interstellar conditions, are presented. For ice deposited under condi-
tions that realistically mimic those in a dense molecular cloud, the thermal desorption of thin films (50 molecular layers) is found to occur with zero order kinetics charac-
terised by a surface binding energy, Edes, of 5773 ±60 K, and a pre-exponential factor, A, of 1030±2 molecules cm−2 s−1. These results imply that, in the dense interstellar
medium, thermal desorption of H2O ice will occur at significantly higher temperatures than has previously been assumed.
AB - Water (H2O) ice is an important solid constituent of many astrophysical environments. To comprehend the role of such ices in the chemistry and evolution of dense molecular
clouds and comets, it is necessary to understand the freeze-out, potential surface reactivity, and desorption mechanisms of such molecular systems. Consequently, there is
a real need from within the astronomical modelling community for accurate empirical molecular data pertaining to these processes. Here we give the first results of a laboratory programme to provide such data. Measurements of the thermal desorption of H2O ice, under interstellar conditions, are presented. For ice deposited under condi-
tions that realistically mimic those in a dense molecular cloud, the thermal desorption of thin films (50 molecular layers) is found to occur with zero order kinetics charac-
terised by a surface binding energy, Edes, of 5773 ±60 K, and a pre-exponential factor, A, of 1030±2 molecules cm−2 s−1. These results imply that, in the dense interstellar
medium, thermal desorption of H2O ice will occur at significantly higher temperatures than has previously been assumed.
KW - molecular data
KW - molecular processes
KW - methods
KW - laboratory
KW - ISM
KW - molecules
KW - nanoscience
UR - http://arxiv.org/PS_cache/astro-ph/pdf/0107/0107487.pdf
U2 - 10.1046/j.1365-8711.2001.04835.x
DO - 10.1046/j.1365-8711.2001.04835.x
M3 - Article
SN - 0035-8711
VL - 327
SP - 1165
EP - 1172
JO - Monthly Notices of the Royal Astronomical Society
JF - Monthly Notices of the Royal Astronomical Society
IS - 4
ER -