We study the formation of molecular hydrogen on dust grain surfaces and apply our results to the high-redshift universe. We find that a range of physical parameters-in particular dust temperature and gas temperature, but not so much dust surface composition-influences the formation rate of H-2. The H-2 formation rate is found to be suppressed above gas kinetic temperatures of a few hundred K and for dust temperatures above 500 K and below 10 K. We highlight the differences between our treatment of the H-2 formation process and other descriptions in the literature. We also study the relative importance of H-2 formation on dust grains with respect to molecular hydrogen formation in the gas phase, through the H- route. The ratio of the formati...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
Molecular hydrogen is the most abundant molecule in the universe. It is the first one to form and su...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
We study the formation of molecular hydrogen on dust grain surfaces and apply our results to the hig...
We study the formation of molecular hydrogen on dust grain surfaces and apply our results to the hig...
International audienceThe microphysics of molecular hydrogen formation has an influence on galactic-...
International audienceThe most efficient mechanism of the formation of molecular hydrogen in the cur...
International audienceContext. It has been found from ISO, Spitzer, and Herschel observations that m...
Author Institution: LUTH - Observatoire de Paris, CNRS UMR 8102, Universite Paris Diderot. e-mail : ...
Context. It has been found from ISO, Spitzer, and Herschel observations that molecular hydrogen, H2,...
Context. The H2 formation on grains is known to be sensitive to dust temperature, which is also know...
Molecular hydrogen is the most abundant molecule in the universe. It is the first one to form and su...
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. 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...
Molecular hydrogen is the most abundant molecule in the universe. It is the first one to form and su...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...
We study the formation of molecular hydrogen on dust grain surfaces and apply our results to the hig...
We study the formation of molecular hydrogen on dust grain surfaces and apply our results to the hig...
International audienceThe microphysics of molecular hydrogen formation has an influence on galactic-...
International audienceThe most efficient mechanism of the formation of molecular hydrogen in the cur...
International audienceContext. It has been found from ISO, Spitzer, and Herschel observations that m...
Author Institution: LUTH - Observatoire de Paris, CNRS UMR 8102, Universite Paris Diderot. e-mail : ...
Context. It has been found from ISO, Spitzer, and Herschel observations that molecular hydrogen, H2,...
Context. The H2 formation on grains is known to be sensitive to dust temperature, which is also know...
Molecular hydrogen is the most abundant molecule in the universe. It is the first one to form and su...
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. 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...
Molecular hydrogen is the most abundant molecule in the universe. It is the first one to form and su...
Context. Molecular hydrogen (H2) is the main constituent of the gas in the planet-forming disks that...