A Stellar Dynamical Mass for the Central Black Hole in MCG$-$06-30-15
Abstract
We present the stellar dynamical mass of the central black hole in the nearby Seyfert galaxy MCG06-30-15 using the Schwarzschild orbit-superposition method implemented in the open-source code FORSTAND. We obtained spatially resolved -band nuclear stellar spectra for this galaxy with SINFONI on the VLT. We extracted the bulk stellar kinematics using GaussHermite (GH) parameterization of the line-of-sight velocity distributions. A multicomponent surface brightness profile of the galaxy was determined from an medium-band image. Our best-fit models indicate a black hole mass of and a stellar mass-to-light ratio of =() /, within 1 confidence intervals. Our constraint on agrees with an upper limit on the mass from stellar dynamics based on the Jeans Anisotropic Method, but is 10 times larger than the reported mass from reverberation mapping. However, our best-fit may be systematically biased high due to the counter-rotating disk in the nucleus of MCG06-30-15 and the inability of the GH parameterization to fully describe such a complicated set of stellar kinematics. In addition, a dynamical value depends heavily on the assumed source distance, which is not yet accurately constrained for this galaxy. MCG06-30-15 is only the fourth galaxy in which we can compare from stellar dynamical modeling with that from reverberation mapping. A direct comparison of allows us to identify and investigate the possible sources of bias associated with different mass measurement techniques, which may influence our understanding of black hole and galaxy coevolution across cosmological timescales.
Keywords
Cite
@article{arxiv.2509.01017,
title = {A Stellar Dynamical Mass for the Central Black Hole in MCG$-$06-30-15},
author = {Nabanita Das and Misty C. Bentz and Eugene Vasiliev and Monica Valluri and Christopher A. Onken and Sandra I. Raimundo and Marianne Vestergaard},
journal= {arXiv preprint arXiv:2509.01017},
year = {2025}
}
Comments
20 pages, 8 figures, accepted for publication in ApJ