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2021ApJ...913..128C - Astrophys. J., 913, 128-128 (2021/June-1)

Thermal desorption of astrophysically relevant ice mixtures of acetaldehyde and acetonitrile from olivine dust.

CORAZZI M.A., BRUCATO J.R., POGGIALI G., PODIO L., FEDELE D. and CODELLA C.

Abstract (from CDS):

Millimeter and centimeter observations are discovering an increasing number of interstellar complex organic molecules (iCOMs) in a large variety of star-forming sites, from the earliest stages of star formation to protoplanetary disks and in comets. In this context it is pivotal to understand how the solid-phase interactions between iCOMs and grain surfaces influence the thermal desorption process and, therefore, the presence of molecular species in the gas phase. In the laboratory, it is possible to simulate the thermal desorption process, deriving important parameters such as the desorption temperatures and energies. We report new laboratory results on temperature-programmed desorption from olivine dust of astrophysical relevant ice mixtures of water, acetonitrile, and acetaldehyde. We found that in the presence of grains, only a fraction of acetaldehyde and acetonitrile desorb at about 100 K and 120 K, respectively, while 40% of the molecules are retained by fluffy grains of the order of 100 µm up to temperatures of 190-210 K. In contrast with the typical assumption that all molecules are desorbed in regions with temperatures higher than 100 K, this result implies that about 40% of the molecules can survive on the grains enabling the delivery of volatiles toward regions with temperatures as high as 200 K and shifting inwards the position of the snow lines in protoplanetary disks. These studies offer a necessary support to interpret observational data and may help our understanding of iCOM formation, providing an estimate of the fraction of molecules released at various temperatures.

Abstract Copyright: © 2021. The American Astronomical Society. All rights reserved.

Journal keyword(s): Laboratory astrophysics - Experimental techniques - Interstellar molecules - Interstellar dust processes

Simbad objects: 7

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