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HIGH- J CO VERSUS FAR-INFRARED RELATIONS IN NORMAL AND STARBURST GALAXIES

2015/04/30 by Daizhong Liu, Yu Gao, Kate Isaak +4
Physics and Astronomy · #Astronomy and Astrophysical Research #Astrophysics and Star Formation Studies #Fourier transform #Galaxies: Formation, Evolution, Phenomena #Galaxy #Luminosity #Photometry (optics) #Sample (material) #Spectrometer #Star formation #astro-ph.GA

paper · pdf · doi:10.1088/2041-8205/810/2/l14

published as ApJL, 810, L14 (2015) · Published in ApJL, 810, L14

openalex publication_date 2015/09/01 · arxiv created 2015/10/15 · arxiv updated 2015/10/16 · openalex created_date 2016/06/24 · openalex updated_date 2026/08/05

Abstract

We present correlations between 9 CO transitions ( to ) and beam-matched far-infrared (far-IR) luminosities ( ) among 167 local galaxies, using Herschel Spectral and Photometric Imaging Receiver Fourier Transform Spectrometer (SPIRE; FTS) spectroscopic data and Photoconductor Array Camera and Spectrometer (PACS) photometry data. We adopt entire-galaxy FIR luminosities ( ) from the IRAS Revised Bright Galaxy Sample and correct to using PACS images to match the varying FTS beam sizes. All 9 correlations between and are essentially linear and tight ( dispersion), even for the highest transition, J = 12–11. This supports the notion that the star formation rate (SFR) is linearly correlated with the dense molecular gas ( ). We divide the entire sample into three subsamples and find that smaller sample sizes can induce large differences in the correlation slopes. We also derive an average CO spectral line energy distribution for the entire sample and discuss the implied average molecular gas properties for these local galaxies. We further extend our sample to high- z galaxies with CO( ) data from the literature as an example, including submillimeter galaxies (SMGs) and "normal" star-forming BzKs. BzKs have similar FIR/CO(5–4) ratios as those of local galaxies, and agreeably follow the locally-determined correlation, whereas SMG ratios fall around or slightly above the local correlation with large uncertainties. Finally, by including Galactic CO( ) data as well as very limited high- z CO( J = 10–9) data, we verify that the CO( )–FIR correlation successfully extends to Galactic young stellar objects, suggesting that linear correlations are valid over 15 orders of magnitude.

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