We have investigated the time scale for formation of molecular clouds by examining the conversion of HI to H2 using a time-dependent model. H2 formation on dust grains and cosmic ray and photo destruction are included in one-dimensional model slab clouds which incorporate time-independent density and temperature distributions. We calculate 21cm spectral line profiles seen in absorption against a background provided by general Galactic HI emission, and compare the model spectra with HI Narrow Self-Absorption, or HINSA, profiles absorbed in a number of nearby molecular clouds. The time evolution of the HI and H2 densities is dramatic, with the atomic hydrogen disappearing in a wave propagating from the central, denser regions which have a sho...
We examine the triggering process of molecular cloud formation around diffuse HII regions. We calcul...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
The timescale over which molecular clouds collapse to form stars is of intense scientific interest. ...
Atomic hydrogen gas (HI) is an integral constituent of the interstellar medium (ISM) and thus plays ...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
This thesis is dedicated to study observationally the formation of molecular cloud formation out of ...
Molecular clouds form from the atomic phase of the interstellar medium. However, characterizing the ...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
(Abridged). In this paper, we present results from a large set of numerical simulations that demonst...
Fundamental observations of molecular hydrogen (H₂) in dark clouds, star forming regions, and radiat...
We present a study of the cold atomic hydrogen (H I) content of molecular clouds simulated within th...
We present a study of the cold atomic hydrogen (H I) content of molecular clouds simulated within th...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
We examine the triggering process of molecular cloud formation around diffuse HII regions. We calcul...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
The timescale over which molecular clouds collapse to form stars is of intense scientific interest. ...
Atomic hydrogen gas (HI) is an integral constituent of the interstellar medium (ISM) and thus plays ...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
This thesis is dedicated to study observationally the formation of molecular cloud formation out of ...
Molecular clouds form from the atomic phase of the interstellar medium. However, characterizing the ...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
To study the atomic, molecular and ionized emission of Giant Molecular Clouds (GMCs), we have initia...
(Abridged). In this paper, we present results from a large set of numerical simulations that demonst...
Fundamental observations of molecular hydrogen (H₂) in dark clouds, star forming regions, and radiat...
We present a study of the cold atomic hydrogen (H I) content of molecular clouds simulated within th...
We present a study of the cold atomic hydrogen (H I) content of molecular clouds simulated within th...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
We examine the triggering process of molecular cloud formation around diffuse HII regions. We calcul...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...
International audienceContext. H2 is the simplest and the most abundant molecule in the interstellar...