English

Calibrating stellar velocity dispersions based on spatially-resolved h-band spectra for improving the m-sigma relation

Cosmology and Nongalactic Astrophysics 2015-06-15 v1

Abstract

To calibrate stellar velocity dispersion measurements from optical and near-IR stellar lines, and to improve the black hole mass (MBH)- stellar velocity dispersion (sigma) relation, we measure stellar velocity dispersions based on high quality H-band spectra for a sample of 31 nearby galaxies, for which dynamical MBH is available in the literature. By comparing velocity dispersions measured from stellar lines in the H-band with those measured from optical stellar lines, we find no significant difference, suggesting that optical and near-IR stellar lines represent the same kinematics and that dust effect is negligible for early-type galaxies. Based on the spatially-resolved rotation and velocity dispersion measurements along the major axis of each galaxy, we find that a rotating stellar disk is present for 80% of galaxies in the sample. For galaxies with a rotation component, velocity dispersions measured from a single aperture spectrum can vary by up to ~20%, depending on the size of the adopted extraction aperture. To correct for the rotational broadening, we derive luminosity-weighted velocity dispersion within the effective radius of each galaxy, providing uniformly measured velocity dispersions to improve the MBH-sigma relation.

Keywords

Cite

@article{arxiv.1302.4742,
  title  = {Calibrating stellar velocity dispersions based on spatially-resolved h-band spectra for improving the m-sigma relation},
  author = {Wol-Rang Kang and Jong-Hak Woo and Andreas Schulze and Dominik A. Riechers and Sang Chul Kim and Daeseong Park and Vernesa Smolcic},
  journal= {arXiv preprint arXiv:1302.4742},
  year   = {2015}
}

Comments

To be published in ApJ, 12 pages, 9 figures