4.7 Article

The SAMI Galaxy Survey: the difference between ionized gas and stellar velocity dispersions

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stac509

关键词

galaxies: active; galaxies: evolution; galaxies: fundamental parameters; galaxies: kinematics and dynamics; galaxies: stellar content; galaxies: structure

资金

  1. Australian Research Council Centre of Excellence for All Sky Astrophysics in 3 Dimensions (ASTRO 3D) [CE170100013]
  2. Australian Research Council ASTRO 3D [CE170100013]
  3. Australian Research Council Centre of Excellence for All-sky Astrophysics (CAASTRO) [CE110001020]
  4. H2020 ERC Consolidator Grant [683184]
  5. Australian Research Council [FT140101202, FT180100231, FT140101166, FT140100255]
  6. Australian Research Council Discovery Early Career Research Award - Australian Government [DE200100461]
  7. Australian Research Council Discovery Project and Future Fellowship [DP210100337, FT180100066]
  8. National Science Foundation [2009416]
  9. Korean National Research Foundation [NRF-2020R1A2C3003769]
  10. Australian Research Council [FT180100231] Funding Source: Australian Research Council
  11. Direct For Mathematical & Physical Scien
  12. Division Of Astronomical Sciences [2009416] Funding Source: National Science Foundation

向作者/读者索取更多资源

This study investigates the velocity dispersions of ionized gas and stars in galaxies from the SAMI Galaxy Survey. It finds that for star-forming galaxies, the velocity dispersion of stars tends to be larger than that of ionized gas, suggesting a general dynamic difference. The study also reveals correlations between the velocity dispersion differences and various galaxy properties, such as beam smearing and the contribution of active galactic nuclei (AGN) or evolved stars to the ionized gas emission.
We investigate the mean locally measured velocity dispersions of ionized gas (sigma(gas)) and stars (sigma(*)) for 1090 galaxies with stellar masses log (M*/M-circle dot) = 9.5 from the SAMI Galaxy Survey. For star-forming galaxies, sigma(*) tends to be larger than sigma(gas), suggesting that stars are in general dynamically hotter than the ionized gas (asymmetric drift). The difference between sgas and s*(Delta sigma) correlates with various galaxy properties. We establish that the strongest correlation of Delta(sigma) is with beam smearing, which inflates sgas more than sigma(*), introducing a dependence of Delta sigma on both the effective radius relative to the point spread function and velocity gradients. The second strongest correlation is with the contribution of active galactic nuclei (AGN) (or evolved stars) to the ionized gas emission, implying that the gas velocity dispersion is strongly affected by the power source. In contrast, using the velocity dispersion measured from integrated spectra (sigma(ap)) results in less correlation between the aperture-based Delta sigma (Delta sigma(ap)) and the power source. This suggests that the AGN (or old stars) dynamically heat the gas without causing significant deviations from dynamical equilibrium. Although the variation of Delta sigma(ap) is much smaller than that of Delta sigma, a correlation between Delta sigma(ap) and gas velocity gradient is still detected, implying that there is a small bias in dynamical masses derived from stellar and ionized gas velocity dispersions.

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