Aims. The production of molecular hydrogen and its deuterated forms onto carbonaceous dust grains is investigated in detail. The goal of this study is to estimate the importance of the chemistry occuring on grain surfaces for the deuteration of H2. Furthermore, we aim to find a robust and general surface chemical model that can be used in different astrophysical environments. Methods. Surface processes are described for the cases of graphitic and amorphous-carbon grains, where laboratory work is available. Langmuir-Hinshelwood, as well as Eley-Rideal surface chemistries are included in the model and their relative contributions highlighted. Analytic expressions are derived for H2, HD, and D2 formation efficiencies for both types of ...
International audienceThe microphysics of molecular hydrogen formation has an influence on galactic-...
Dust grains exert a major influence upon the chemical composition of the interstellar medium: photoe...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
International audienceAims: The production of molecular hydrogen and its deuterated forms onto carbo...
Aims. The production of molecular hydrogen and its deuterated forms onto carbonaceous dust grains is...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. HD and H2 molecules play important roles in the cooling of primordial and very metal-poor g...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Molecular hydrogen, H2 , is one of the fundamental constituents of the universe, acting as the molec...
The formation of H2 and HD molecules on interstellar dust grains is studied using rate equation and ...
Context. HD and H-2 molecules play important roles in the cooling of primordial and very metal-poor ...
Recent laboratory experiments on interstellar dust analogues have shown that H_2 formation on dust g...
Context. Protoplanetary disks are the target of many chemical studies (both observational and theore...
International audienceThe microphysics of molecular hydrogen formation has an influence on galactic-...
Dust grains exert a major influence upon the chemical composition of the interstellar medium: photoe...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
International audienceAims: The production of molecular hydrogen and its deuterated forms onto carbo...
Aims. The production of molecular hydrogen and its deuterated forms onto carbonaceous dust grains is...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Context. HD and H2 molecules play important roles in the cooling of primordial and very metal-poor g...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Molecular hydrogen, H2 , is one of the fundamental constituents of the universe, acting as the molec...
The formation of H2 and HD molecules on interstellar dust grains is studied using rate equation and ...
Context. HD and H-2 molecules play important roles in the cooling of primordial and very metal-poor ...
Recent laboratory experiments on interstellar dust analogues have shown that H_2 formation on dust g...
Context. Protoplanetary disks are the target of many chemical studies (both observational and theore...
International audienceThe microphysics of molecular hydrogen formation has an influence on galactic-...
Dust grains exert a major influence upon the chemical composition of the interstellar medium: photoe...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...