The central parsecs of Centaurus A: High Excitation Gas, a Molecular Disk, and the Mass of the Black Hole
N. Neumayer (1), M. Cappellari (2), J. Reunanen (3), H.-W. Rix (1), P., P. van der Werf (3), P. T. de Zeeuw (3,4), R. I. Davies (5) ((1) MPIA, Heidelberg, (2) University of Oxford, (3) Sterrewacht Leiden, (4) ESO, (5), MPE Garching)

TL;DR
This study uses high-resolution AO integral-field spectroscopy to map gas kinematics in Centaurus A's nucleus, accurately measuring the black hole mass and revealing a warped molecular gas disk aligned with the galaxy's gravitational potential.
Contribution
First AO integral-field observations of Cen A's nucleus enabling detailed modeling of the gas disk and precise black hole mass measurement.
Findings
Black hole mass ~4.5x10^7 solar masses
Warped molecular gas disk with inclination ~34°
Consistent black hole mass with previous ionized gas and stellar dynamical measurements
Abstract
We present two-dimensional gas-kinematic maps of the central region in Centaurus A. The adaptive optics (AO) assisted SINFONI data from the VLT have a resolution of 0.12" in K-band. The ionized gas species (Br_gamma, [FeII], [SiVI]) show a rotational pattern that is increasingly overlaid by non-rotational motion for higher excitation lines in direction of Cen A's radio jet. The emission lines of molecular hydrogen (H_2) show regular rotation and no distortion due to the jet. The molecular gas seems to be well settled in the gravitational potential of the stars and the central supermassive black hole and we thus use it as a tracer to model the mass in the central +/-1.5". These are the first AO integral-field observations on the nucleus of Cen A, enabling us to study the regularity of the rotation around the black hole, well inside the radius of influence, and to determine the…
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