Mapping gas accretion and stellar kinematics to sub-kiloparsec scales in NGC 4696 with JWST/NIRSpec
Mathieu Marquis, Julie Hlavacek-Larrondo, Olivia Pereira, Michael Reefe, Hyunseop Choi, Jorge Barrera-Ballesteros, Benjamin Vigneron, Ming Sun, Rebecca E. A. Canning, Gregory Taylor, Loïc Albert, Francesco D'Eugenio, Megan Donahue, Andrew C. Fabian, Gary J. Ferland, John S. Gallagher, Marie-Lou Gendron-Marsolais, Pierre Guillard, Minghao Guo, Nina Hatch, Ralf Kotulla, Yuan Li, Roberto Maiolino, Allison Man, Michael A. McDonald, Brian R. McNamara, Valeria Olivares, Marine Prunier, Christopher S. Reynolds, Carter Rhea, Annabelle Richard-Laferrière, Helen R. Russell, Philippe Salomé, Prathamesh Tamhane, Auriane Thilloy, Grant R. Tremblay, G. Mark Voit, Stephen A. Walker
Abstract
We present JWST/NIRSpec IFU spectroscopy of the central 618×618 pc2 (3''×3'') of NGC 4696, the BCG in the Centaurus cluster. Leveraging the 0.1'' (20.6 pc) pixel size of JWST, we resolve a compact circumnuclear rotating disk (radius of 120 pc) traced by Paα and H2 1-0 S(1) emission, which allows a reassessment of the AGN position based on the kinematic centre of this disk. A central Paα velocity dispersion reaching σ449 km s-1 implies a SMBH mass of 109 M, corresponding to a sphere of influence of rinf60 pc, resolved by our observations. Position-velocity diagrams reveal an increase from -200 to 600 km s-1 on scales of 150 pc (a gradient of 4.7 km s-1 pc-1) and an accretion rate of 18 M yr-1 feeding the CND. The Paα emission shows a double-component in the core, with a high-dispersion redshifted component reaching σ600 km s-1. In contrast, MUSE Hα observations covering the 10 kpc-scale filamentary structure recover only weak velocity gradients (150 km s-1) within 300×300 pc2 and do not resolve the disk due to larger PSFs and pixel sizes. ALMA CO(2-1) data reveal only compact molecular clumps within a 410×410 pc2 region, with no extended counterpart to the structures traced by Paα and H2 1-0 S(1). Stellar kinematics show a smooth velocity field and broad dispersion profile, clearly decoupled from both the multiphase gas and the hot ICM probed by XRISM. These results provide a direct, spatially resolved view of gas dynamics within the inner few hundred parsecs, demonstrating the power of JWST/NIRSpec to probe SMBH feeding.
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