Molecular hydrogen emission in the interstellar medium of the Large Magellanic Cloud
arXiv:1407.7658 · doi:10.1093/mnras/stu2276
Abstract
We present the detection and analysis of molecular hydrogen emission toward ten interstellar regions in the Large Magellanic Cloud. We examined low-resolution infrared spectral maps of twelve regions obtained with the Spitzer infrared spectrograph (IRS). The pure rotational 0--0 transitions of H at 28.2 and 17.1 are detected in the IRS spectra for ten regions. The higher level transitions are mostly upper limit measurements except for three regions, where a 3 detection threshold is achieved for lines at 12.2 and 8.6. The excitation diagrams of the detected H transitions are used to determine the warm H gas column density and temperature. The single-temperature fits through the lower transition lines give temperatures in the range . The bulk of the excited H gas is found at these temperatures and contributes 5-17% to the total gas mass. We find a tight correlation of the H surface brightness with polycyclic aromatic hydrocarbon and total infrared emission, which is a clear indication of photo-electric heating in photodissociation regions. We find the excitation of H by this process is equally efficient in both atomic and molecular dominated regions. We also present the correlation of the warm H physical conditions with dust properties. The warm H mass fraction and excitation temperature show positive correlations with the average starlight intensity, again supporting H excitation in photodissociation regions.
Accepted for publication in MNRAS
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