High Molecular-gas to Dust Mass Ratios Predicted in Most Quiescent Galaxies
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Author
Whitaker, K.E.Narayanan, D.
Williams, C.C.
Li, Q.
Spilker, J.S.
Davé, R.
Akhshik, M.
Akins, H.B.
Bezanson, R.
Katz, N.
Leja, J.
Magdis, G.E.
Mowla, L.
Nelson, E.J.
Pope, A.
Privon, G.C.
Toft, S.
Valentino, F.
Affiliation
Steward Observatory, University of ArizonaIssue Date
2021
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American Astronomical SocietyCitation
Whitaker, K. E., Narayanan, D., Williams, C. C., Li, Q., Spilker, J. S., Davé, R., Akhshik, M., Akins, H. B., Bezanson, R., Katz, N., Leja, J., Magdis, G. E., Mowla, L., Nelson, E. J., Pope, A., Privon, G. C., Toft, S., & Valentino, F. (2021). High Molecular-gas to Dust Mass Ratios Predicted in Most Quiescent Galaxies. Astrophysical Journal Letters.Journal
Astrophysical Journal LettersRights
Copyright © 2021. The Author(s). Published by the American Astronomical Society.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
Observations of cold molecular gas reservoirs are critical for understanding the shutdown of star formation in massive galaxies. While dust continuum is an efficient and affordable tracer, this method relies upon the assumption of a "normal"molecular-gas to dust mass ratio, δ GDR, typically of order 100. Recent null detections of quiescent galaxies in deep dust continuum observations support a picture where the cold gas and dust have been rapidly depleted or expelled. In this work, we present another viable explanation: a significant fraction of galaxies with low star formation per unit stellar mass are predicted to have extreme δ GDR ratios. We show that simulated massive quiescent galaxies at 0 < z < 3 in the simba cosmological simulations have δ GDR values that extend >4 orders of magnitude. The dust in most simulated quiescent galaxies is destroyed significantly more rapidly than the molecular gas depletes, and cannot be replenished. The transition from star-forming to quiescent halts dust formation via star formation processes, with dust subsequently destroyed by supernova shocks and thermal sputtering of dust grains embedded in hot plasma. After this point, the dust growth rate in the models is not sufficient to overcome the loss of >3 orders of magnitude in dust mass to return to normal values of δ GDR despite having high metallicity. Our results indicate that it is not straight forward to use a single observational indicator to robustly preselect exotic versus normal ratios. These simulations make strong predictions that can be tested with millimeter facilities. © 2021. The Author(s). Published by the American Astronomical Society..Note
Immediate accessISSN
2041-8205Version
Final published versionae974a485f413a2113503eed53cd6c53
10.3847/2041-8213/ac399f
