Discovery of a Planar Black Hole Mass Scaling Relation for Spiral Galaxies
arXiv:2309.08986 · doi:10.3847/2041-8213/acfa98
Abstract
Supermassive black holes (SMBHs) are tiny in comparison to the galaxies they inhabit, yet they manage to influence and coevolve along with their hosts. Evidence of this mutual development is observed in the structure and dynamics of galaxies and their correlations with black hole mass (). For our study, we focus on relative parameters that are unique to only disk galaxies. As such, we quantify the structure of spiral galaxies via their logarithmic spiral-arm pitch angles () and their dynamics through the maximum rotational velocities of their galactic disks (). In the past, we have studied black hole mass scaling relations between and or , separately. Now, we combine the three parameters into a trivariate -- relationship that yields best-in-class accuracy in prediction of black hole masses in spiral galaxies. Because most black hole mass scaling relations have been created from samples of the largest SMBHs within the most massive galaxies, they lack certainty when extrapolated to low-mass spiral galaxies. Thus, it is difficult to confidently use existing scaling relations when trying to identify galaxies that might harbor the elusive class of intermediate-mass black holes (IMBHs). Therefore, we offer our novel relationship as an ideal predictor to search for IMBHs and probe the low-mass end of the black hole mass function by utilizing spiral galaxies. Already with rotational velocities widely available for a large population of galaxies and pitch angles readily measurable from uncalibrated images, we expect that the -- fundamental plane will be a useful tool for estimating black hole masses, even at high redshifts.
Unedited manuscript (12 pages & 4 figures), accepted for publication by The Astrophysical Journal Letters on September 15, 2023
References in corpus (19)
- Array Programming with NumPy
- First Sagittarius A* Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole in the Center of the Milky Way
- HyperLEDA. III. The catalogue of extragalactic distances
- First Sagittarius A* Event Horizon Telescope Results. IV. Variability, Morphology, and Black Hole Mass
- An Improved Distance and Mass Estimate for Sgr A* from a Multistar Orbit Analysis
- Unification of the Fundamental Plane and Super-Massive Black Holes Masses
- Black Hole Mass Scaling Relations for Early-Type Galaxies: - and -
- The Fundamental Plane of Black Hole Accretion and its Use as a Black Hole-Mass Estimator
- Discovery of a relationship between spiral arm morphology and supermassive black hole mass in disk galaxies
- A galaxy classification grid that better recognises early-type galaxy morphology
- A high pitch angle structure in the Sagittarius Arm
- Defining the (Black Hole)-Spheroid Connection with the Discovery of Morphology-Dependent Substructure in the -- and -- Diagrams: New Tests for Advanced Theories and Realistic Simulations
- The local black hole mass function derived from the M_{BH}-P and the M_{BH}-n relations
- Expected intermediate-mass black holes in the Virgo cluster. I. Early-type galaxies
- Active Galactic Nuclei: Boon or Bane for Biota?
- Intermediate-mass black holes and the fundamental plane of black hole accretion
- Resequencing the Hubble sequence and the quadratic (black hole mass)-(spheroid stellar mass) relation for elliptical galaxies
- Splitting the lentils: Clues to galaxy/black hole coevolution from the discovery of offset relations for non-dusty versus dusty (wet-merger-built) lenticular galaxies in the - diagram
- Probing the Low-mass End of the Black Hole Mass Function via a Study of Faint Local Spiral Galaxies