Constraints on Black Hole/Host Galaxy Co-evolution and Binary Stalling Using Pulsar Timing Arrays
arXiv:1603.06577 · doi:10.3847/0004-637X/826/1/11
Abstract
Pulsar timing arrays are now setting increasingly tight limits on the gravitational wave background from binary supermassive black holes. But as upper limits grow more constraining, what can be implied about galaxy evolution? We investigate which astrophysical parameters have the largest impact on strain spectrum predictions and provide a simple framework to directly translate between measured values for the parameters of galaxy evolution and PTA limits on the gravitational wave background of binary supermassive black holes. We find that the most influential observable is the relation between a host galaxy's central bulge and its central black hole, $\mbox{$M_{\bullet}M_{\rm bulge}$}$, which has the largest effect on the mean value of the characteristic strain amplitude. However, the variance of each prediction is dominated by uncertainties in the galaxy stellar mass function. Using this framework with the best published PTA limit, we can set limits on the shape and scatter of the $\mbox{$M_{\bullet}M_{\rm bulge}$}$ relation. We find our limits to be in contention with strain predictions using two leading measurements of this relation. We investigate several possible reasons for this disagreement. If we take the $\mbox{$M_{\bullet}M_{\rm bulge}$}$ relations to be correct within a simple power-law model for the gravitational wave background, then the inconsistency is reconcilable by allowing for an additional "stalling" time between a galaxy merger and evolution of a binary supermassive black hole to sub-parsec scales, with lower limits on this timescale of Gyr.
10 pages, 14 figures, submitted to ApJ
References in corpus (13)
- PRIMUS: Constraints on Star Formation Quenching and Galaxy Merging, and the Evolution of the Stellar Mass Function From z=0-1
- The stochastic gravitational-wave background from massive black hole binary systems: implications for observations with Pulsar Timing Arrays
- The Evolution of Galaxy Structure over Cosmic Time
- Massive black hole binary mergers within sub-pc scale gas discs
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- Rapid Formation of Supermassive Black Hole Binaries in Galaxy Mergers with Gas
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- A calibration of the relation between the abundance of close galaxy pairs and the rate of galaxy mergers
- Galaxy And Mass Assembly (GAMA): Galaxy close-pairs, mergers, and the future fate of stellar mass
- Prospects for gravitational-wave detection and supermassive black hole astrophysics with pulsar timing arrays
- Binary super-massive black hole environments diminish the gravitational-wave signal in the pulsar timing band
- Constraining the Solution to the Last Parsec Problem with Pulsar Timing
- Evolution of the Major Merger Galaxy Pair Fraction at z < 1
Cited by in corpus (37)
- The NANOGrav 12.5-year Data Set: Search For An Isotropic Stochastic Gravitational-Wave Background
- The NANOGrav 11-year Data Set: Pulsar-timing Constraints On The Stochastic Gravitational-wave Background
- The NANOGrav 15-year Data Set: Constraints on Supermassive Black Hole Binaries from the Gravitational Wave Background
- The International Pulsar Timing Array second data release: Search for an isotropic Gravitational Wave Background
- The Astrophysics of Nanohertz Gravitational Waves
- Dark, Cold, and Noisy: Constraining Secluded Hidden Sectors with Gravitational Waves
- Black hole mergers from dwarf to massive galaxies with the NewHorizon and Horizon-AGN simulations
- Astrophysics Milestones For Pulsar Timing Array Gravitational Wave Detection
- Electromagnetic Counterparts to Massive Black Hole Mergers
- Constraining astrophysical observables of Galaxy and Supermassive Black Hole Binary Mergers using Pulsar Timing Arrays
- Testing the binary hypothesis: pulsar timing constraints on supermassive black hole binary candidates
- Massive BH Binaries as Periodically-Variable AGN
- Constraining Sub-Parsec Binary Supermassive Black Holes in Quasars with Multi-Epoch Spectroscopy. III. Candidates from Continued Radial Velocity Tests
- Constraints On The Dynamical Environments Of Supermassive Black-hole Binaries Using Pulsar-timing Arrays
- Efficient computation of the gravitational wave spectrum emitted by eccentric massive black hole binaries in stellar environments
- Gravitational wave research using pulsar timing arrays
- The NANOGrav 11-Year Data Set: Evolution of Gravitational Wave Background Statistics
- A quasar-based supermassive black hole binary population model: implications for the gravitational-wave background
- The NANOGrav Program for Gravitational Waves and Fundamental Physics
- Insights into searches for anisotropies in the nanohertz gravitational-wave background
- Probing the assembly history and dynamical evolution of massive black hole binaries with pulsar timing arrays
- Model Dependence of Bayesian Gravitational-Wave Background Statistics for Pulsar Timing Arrays
- Hubble Space Telescope Wide Field Camera 3 Identifies an = 1 Kpc Dual Active Galactic Nucleus in the Minor Galaxy Merger SDSS J0924+0510 at z = 0.1495
- No tension between assembly models of supermassive black hole binaries and pulsar observations
- A declining major merger fraction with redshift in the local Universe from the largest-yet catalog of major and minor mergers in SDSS
- Evolution Of Massive Black Hole Binaries In Rotating Stellar Nuclei: Implications For Gravitational Wave Detection
- Exploring Proxies for the Supermassive Black Hole Mass Function: Implications for Pulsar Timing Arrays
- Spectral Energy Distributions of Candidate Periodically-Variable Quasars: Testing the Binary Black Hole Hypothesis
- Morphological evolution of supermassive black hole merger hosts and multimessenger signatures
- Probing the Merger Rates of Supermassive Black Holes and Galaxies with Gravitational Waves
- Pulsar Timing Array Experiments
- Radio pulsars: testing gravity and detecting gravitational waves
- On the detectability of massive black hole merger eventsby LISA
- Astrophysics with the Laser Interferometer Space Antenna
- Gravitational Waves, Extreme Astrophysics, and Fundamental Physics with Precision Pulsar Timing
- Inferring Mbh-Mbulge Evolution from the Gravitational Wave Background
- Gravitational Wave Measurement of the - Intrinsic Scatter at High Redshift