arXiv · 1412.1880
Spatially resolved physical conditions of molecular gas and potential star formation tracers in M83, revealed by the Herschel SPIRE FTS
Abstract
Since the launch of the Herschel Space Observatory, our understanding about the photo-dissociation regions (PDR) has taken a step forward. In the bandwidth of the Fourier Transform Spectrometer (FTS) of the Spectral and Photometric Imaging REceiver (SPIRE) on board Herschel, ten CO rotational transitions, including J=4-3 to J=13-12, and three fine structure lines, including [CI] 609, [CI] 370, and [NII] 250 micron, are covered. In this paper, we present our findings from the FTS observations at the nuclear region of M83, based on the spatially resolved physical parameters derived from the CO spectral line energy distribution (SLED) map and the comparisons with the dust properties and star-formation tracers. We discuss (1) the potential of using [NII] 250 and [CI] 370 micron as star-formation tracers; (2) the reliability of tracing molecular gas with CO; (3) the excitation mechanisms of warm CO; (4) the possibility of studying stellar feedback by tracing the thermal pressure of molecular gas in the nuclear region of M83.
Explore related subjects
Keep this discovery
Ronin Wu, Suzanne Madden, Frédéric Galliano, Christine D. Wilson, Julia Kamenetzky, Min-Young Lee, Maximilien Schirm, Sacha Hony, Vianney Lebouteiller, Luigi Spinoglio, Diane Cormier, Jason Glenn, Philip R. Maloney, Miguel Pereira-Santaella, Aurélie Rémy-Ruyer, Martin Baes, Alexandro Boselli, Frédéric Bournaud, Ilse De Looze, Thomas M. Hughes, Pasquale Panuzzo, Naseem Rangwala. 2014-12-05. Spatially resolved physical conditions of molecular gas and potential star formation tracers in M83, revealed by the Herschel SPIRE FTS. https://doi.org/10.1051/0004-6361/201423847
Cite the original work for its findings. Save a collection to share your selection of sources.