Abstract
Observations by ISO and Spitzer toward young stellar objects showed that CO 2 segregates in the icy mantles covering dust grains. Thermal processing of the ice mixture was proposed as being responsible for the segregation. Although several laboratories studied thermally induced segregation, a satisfying quantification is still missing. We propose that the diffusion of CO 2 along pores inside water ice is the key to quantify segregation. We combined Temperature Programmed Desorption and Reflection Absorption InfraRed Spectroscopy to study how CO 2 molecules interact on a non-porous amorphous solid water (np-ASW) surface. We found that CO 2 diffuses significantly on an np-ASW surface above 65 K and clusters are formed at well below one monolayer. A simple rate equation simulation finds that the diffusion energy barrier of CO 2 on np-ASW is 2150 ± 50 K, assuming a diffusion pre-exponential factor of 10 12 s −1 . This energy should also apply to the diffusion of CO 2 on the wall of pores. The binding energy of CO 2 from CO 2 clusters and CO 2 from H 2 O ice has been found to be 2415 ± 20 K and 2250 ± 20 K, respectively, assuming the same prefactor for desorption. CO 2 –CO 2 interaction is stronger than CO 2 –H 2 O interaction, in agreement with the experimental finding that CO 2 does not wet the np-ASW surface. For comparison, we carried out similar experiments with CO on np-ASW, and found that the CO–CO interaction is always weaker than CO–H 2 O. As a result, CO wets the np-ASW surface. This study should be of help to uncover the thermal history of CO 2 on the icy mantles of dust grains.
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CITATION STYLE
He, J., Emtiaz, S. M., & Vidali, G. (2017). Diffusion and Clustering of Carbon Dioxide on Non-porous Amorphous Solid Water. The Astrophysical Journal, 837(1), 65. https://doi.org/10.3847/1538-4357/aa5f52
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