Lighting the dark molecular gas: H as a direct tracer
arXiv:1607.08036 · doi:10.3847/0004-637X/830/1/18
Abstract
Robust knowledge of molecular gas mass is critical for understanding star formation in galaxies. The H molecule does not emit efficiently in the cold interstellar medium, hence the molecular gas content of galaxies is typically inferred using indirect tracers. At low metallicity and in other extreme environments, these tracers can be subject to substantial biases. We present a new method of estimating total molecular gas mass in galaxies directly from pure mid-infrared rotational H emission. By assuming a power-law distribution of H rotational temperatures, we can accurately model H excitation and reliably obtain warm ( K) H gas masses by varying only the power law's slope. With sensitivities typical of Spitzer/IRS, we are able to directly probe the H content via rotational emission down to ~80 K, accounting for ~15% of the total molecular gas mass in a galaxy. By extrapolating the fitted power law temperature distributions to a calibrated \emph{single} lower cutoff temperature, the model also recovers the total molecular content within a factor of ~2.2 in a diverse sample of galaxies, and a subset of broken power law models performs similarly well. In ULIRGs, the fraction of warm H gas rises with dust temperature, with some dependency on . In a sample of five low metallicity galaxies ranging down to 12+log[O/H]=7.8, the model yields molecular masses up to ~100 times larger than implied by CO, in good agreement with other methods based on dust mass and star formation depletion timescale. This technique offers real promise for assessing molecular content in the early universe where CO and dust-based methods may fail.
14 Figures, 6 Tables, Accepted for publication in ApJ
References in corpus (19)
- Dust Masses, PAH Abundances, and Starlight Intensities in the SINGS Galaxy Sample
- Combined CO & Dust Scaling Relations of Depletion Time and Molecular Gas Fractions with Cosmic Time, Specific Star Formation Rate and Stellar Mass
- Spectral Mapping Reconstruction of Extended Sources
- The Spitzer Survey of the Small Magellanic Cloud: FIR Emission and Cold Gas in the SMC
- The primordial abundance of 4He: a self-consistent empirical analysis of systematic effects in a large sample of low-metallicity HII regions
- CO-dark gas and molecular filaments in Milky Way type galaxies
- Powerful High Velocity-Dispersion Molecular Hydrogen Associated with an Intergalactic Shock Wave in Stephan's Quintet
- Mid-Infrared Properties of Luminous Infrared Galaxies II: Probing the Dust and Gas Physics of the GOALS Sample
- A Spitzer Infrared Spectrograph Survey of Warm Molecular Hydrogen in Ultra-luminous Infrared Galaxies
- Mapping warm molecular hydrogen with Spitzer's Infrared Array Camera (IRAC)
- Imaging Molecular Gas in the Luminous Merger NGC 3256 : Detection of High-Velocity Gas and Twin Gas Peaks in the Double Nucleus
- A Large Mass of H2 in the Brightest Cluster Galaxy in Zwicky 3146
- CO-dark gas and molecular filaments in Milky Way-type galaxies - II: The temperature distribution of the gas
- Warm molecular gas temperature distribution in six local infrared bright Seyfert galaxies
- Origin and z-distribution of Galactic diffuse [CII] emission
- Jet-Shocked H2 and CO in the Anomalous Arms of Molecular Hydrogen Emission Galaxy NGC 4258
- A search for molecular gas in restarting radio galaxies
- APEX CO(3-2) observations of NGC6822
- Predictions for surveys with the SPICA Mid-infrared Instrument
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