[Context] The methylidyne cation (CH) and hydroxyl (OH) are key molecules in the warm interstellar chemistry, but their formation and excitation mechanisms are not well understood. Their abundance and excitation are predicted to be enhanced by the presence of vibrationally excited H or hot gas (~500-1000 K) in photodissociation regions (PDRs) with high incident far-ultraviolet (FUV) radiation field. The excitation may also originate in dense gas (>10 cm) followed by nonreactive collisions with H, H, and electrons. Previous observations of the Orion Bar suggest that the rotationally excited CH and OH correlate with the excited CO, which is a tracer of dense and warm gas, and that formation pumping contributes to CH excitation.[Aims] Our goal...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
ABSTRACT Context. The abundances of interstellar CH + and SH + are not well understood as their most...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
ABSTRACT Context. The abundances of interstellar CH + and SH + are not well understood as their most...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
International audienceContext. The methylidyne cation (CH ) and hydroxyl (OH) are key molecules in t...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The methylidyne cation (CH+) and hydroxyl (OH) are key molecules in the warm interstellar c...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
Context. The abundances of interstellar CH+ and SH+ are not well understood as their most likely for...
ABSTRACT Context. The abundances of interstellar CH + and SH + are not well understood as their most...