Ion radiation in icy space environments: Synthesis and radioresistance of complex organic molecules - Archive ouverte HAL Accéder directement au contenu
Article Dans Une Revue Low Temperature Physics Année : 2019

Ion radiation in icy space environments: Synthesis and radioresistance of complex organic molecules

Résumé

Ices are omnipresent in cold regions in space on, e.g., comets, dust grains, transneptunian objects, surfaces of planets and their satellites. The dominant molecule in such ices is water, but also other small molecules or even complex organic molecules (COMs) may be present. Ionizing radiation (UV photons, electrons, ions from cosmic rays or solar wind) induces several physico-chemical processes such as radiolysis. The fragmentation of initial molecules followed by chemical reactions between radicals may lead to formation of new molecules. Furthermore, also implanted projectiles can contribute to chemistry by forming new molecular species. Other observed effects include structural changes (compaction, amorphization) and desorption (sputtering) of particles from the surface. At CIMAP (Caen, France), using the different beam lines of the GANIL facility, and at GSI (Darmstadt, Germany), the interaction of swift highly charged heavy ions with astrophysical ices has been studied in a wide projectile energy range from keV to GeV. Here, two examples of our studies on astrophysical and astrochemical applications will be discussed in detail: 1) the synthesis of COMs under irradiation of ices made of small molecules, and 2) radiosensitivity of COMs such as pyridine, glycine and adenine, both for isolated molecules in the gas phase and in condensed phase. Special emphasis is given on pyridine and pyridine in water matrix.
Fichier non déposé

Dates et versions

hal-02272292 , version 1 (27-08-2019)

Identifiants

Citer

Prudence Ada Bibang, Aditya Agnihotri, Basile Augé, Philippe Boduch, Charles Desfrançois, et al.. Ion radiation in icy space environments: Synthesis and radioresistance of complex organic molecules. Low Temperature Physics, 2019, 45 (6), pp.590-597. ⟨10.1063/1.5103250⟩. ⟨hal-02272292⟩
68 Consultations
0 Téléchargements

Altmetric

Partager

Gmail Facebook X LinkedIn More