Chemistry and rotational excitation of O_2_ in interstellar clouds. I. Predicted emissivities of lines for the ODIN, SWAS, PRONAOS-SMH and PIROG 8 submillimeter receivers.
Chemistry and rotational excitation of O_2_ in interstellar clouds. I. Predicted emissivities of lines for the ODIN, SWAS, PRONAOS-SMH and PIROG 8 submillimeter receivers.
复制标题
星际云中 O_2_ 的化学和旋转激发。
DOI:
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发表时间:
1997
期刊:
影响因子:
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通讯作者:
J. Benayoun
中科院分区:
文献类型:
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作者:
P. Maréchal;Y. Viala;J. Benayoun
Molecularoxygenhasnotyetbeenobservedininter- stellar clouds because of the opacity of the Earth's atmosphere. Due to its potential importance in interstellar chemistry, several projets attempting to detect rotational lines of O2 are being de- velopedusingmillimeterandsubmillimeterreceiversembarked on satellites or stratospheric balloons: ODIN for the 119 and 487 GHz lines, SWAS for the 487 GHz line, PRONAOS-SMH for the 368 GHz line and PIROG 8 for the 425 GHz line. As a theoretical preparation to these projects and taking advantage of recent developments in interstellar chemistry as well as re- cent cross-section calculations of collisional excitation of O2, we have used an interstellar cloud model to perform a non-LTE calculation of O2 rotational population. O2 column densities and emissivities of its rotational lines at (sub)millimeter wave- lengths are predicted for various conditions in diffuse, translu- centanddensedarkclouds,coveringarangeofvisualextinction from 1 to 30. The effects of density, temperature, external ul- traviolet radiation eld and gas phase elemental abundances on the O2 abundance and rotational excitation have been investi- gated. Our results are confronted to the ones obtained by Black & Smith (1984) who adressed initially the problem of the de- tectability of interstellar O2. If density and temperature have little influence on the O2 abundance, it is not the case for the UV radiation eld which efciently destroys O2 so as to pre- vent its detection in most clouds as soon as it is enhanced by a factor of 1000 with respect to the local standard value. The most drastic parameter that influences the abundance of O2 | as well as that of OH and H2O | is the gas-phase C/O abun- danceratio:forC/Oratiolargerthan0.7,O2 becomesunobserv- able by all forthcoming missions except for the 119 GHz line which remains observable in very opaque clouds (AV 20) up to C/O = 1. The rate coefcient of the reaction O+OH!O2+H which produces molecular oxygen has little influence on the O2 abundance in clouds sufciently opaque to allow detection; it however controls the OH abundance since it is the main de- struction process of this molecule. Our model calculations also Send offprint requests to: P. Marechal (Priscilla.Marechal@obspm.fr) predict that the radiative de-excitation of O2 rotational levels could be an important cooling agent in cold molecular clouds with an efciency comparable to that of CO.