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Kpc-scale properties of dust temperature in terms of dust mass and star formation activity

  • I. Da Chiang
  • , Hiroyuki Hirashita
  • , Jérémy Chastenet
  • , Eric W. Koch
  • , Adam K. Leroy
  • , Erik Rosolowsky
  • , Karin M. Sandstrom
  • , Amy Sardone
  • , Jiayi Sun
  • , Thomas G. Williams

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

We investigate how dust temperature is affected by local environmental quantities, especially dust surface density (dust), dust-to-gas ratio (D/G), and interstellar radiation field. We compile multiwavelength observations in 46 nearby galaxies, uniformly processed with a common physical resolution of 2 kpc. A physical dust model is used to fit the infrared dust emission spectral energy distribution (SED) observed with WISE and Herschel. The star formation rate (SFR) is traced with GALEX ultraviolet data corrected by WISE infrared. We find that the dust temperature correlates well with the SFR surface density (SFR), which traces the radiation from young stars. The dust temperature decreases with increasing D/G at fixed SFR, as expected from stronger dust shielding at high D/G, when SFR is higher than ∼ 2 × 10−3 M yr−1 kpc−2. These measurements are in good agreement with the dust temperature predicted by our proposed analytical model. Below this range of SFR, the observed dust temperature is higher than the model prediction and is only weakly dependent on D/G, possibly due to dust heating from an old stellar population or the variation of SFR within the past 1010 yr. Overall, the dust temperature as a function of SFR and dust predicted by our analytical model is consistent with observations. We also notice that, at fixed gas surface density, SFR tends to increase with D/G, i.e. we can modify the Kennicutt–Schmidt law empirically with a dependence on D/G to match observations better.

Original languageEnglish
Pages (from-to)5506-5520
Number of pages15
JournalMonthly Notices of the Royal Astronomical Society
Volume520
Issue number4
DOIs
StatePublished - Apr 1 2023

Bibliographical note

Publisher Copyright:
© 2023 Oxford University Press. All rights reserved.

Keywords

  • dust, extinction
  • galaxies: ISM
  • galaxies: star formation
  • infrared: ISM
  • radiative transfer
  • ultraviolet: stars

ASJC Scopus subject areas

  • Astronomy and Astrophysics
  • Space and Planetary Science

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