Using Pulsars to Detect Massive Black Hole Binaries via Gravitational Radiation: Sagittarius A* and Nearby Galaxies
arXiv:astro-ph/0107470 · doi:10.1086/323491
Abstract
Pulsar timing measurements can be used to detect gravitational radiation from massive black hole binaries. The ~106d quasi-periodic flux variations in Sagittarius A* at radio wavelengths reported by Zhao, Bower, & Goss (2001) may be due to binarity of the massive black hole that is presumed to be responsible for the radio emission. A 106d equal-mass binary black hole is unlikely based on its short inspiral lifetime and other arguments. Nevertheless the reported quasi-periodicity has led us to consider whether the long-wavelength gravitational waves from a conjectured binary might be detected in present or future precision timing of millisecond pulsars. While present timing cannot reach the level expected for an equal-mass binary, we estimate that future efforts could. This inquiry has led us to further consider the detection of binarity in the massive black holes now being found in nearby galaxies. For orbital periods of ~2000d where the pulsar timing measurements are most precise, we place upper limits on the mass ratio of binaries as small as 0.06.
7 pages, 2 eps figures, accepted for publication in ApJ
References in corpus (1)
Cited by in corpus (49)
- Binary and Millisecond Pulsars
- Gravitational radiation from cosmic (super)strings: bursts, stochastic background, and observational windows
- Gravitational Waves Probe the Coalescence Rate of Massive Black Hole Binaries
- The Astrophysics of Nanohertz Gravitational Waves
- Arecibo Pulsar Survey Using ALFA. I. Survey Strategy and First Discoveries
- The stochastic background: scaling laws and time to detection for pulsar timing arrays
- Observational Constraints on Cosmic String Production During Brane Inflation
- Strong-Field Tests of Gravity Using Pulsars and Black Holes
- The need for a second black hole at the Galactic center
- Constraining the properties of the proposed supermassive black hole system in 3c66b: Limits from pulsar timing
- Bounds on Cosmic Strings from WMAP and SDSS
- Binary and Millisecond Pulsars
- NANOGrav Limits on Gravitational Waves from Individual Supermassive Black Hole Binaries in Circular Orbits
- Pulsars as Tools for Fundamental Physics and Astrophysics
- The Sensitivity of the Parkes Pulsar Timing Array to Individual Sources of Gravitational Waves
- Geometric Time Delay Interferometry
- Testing Theories of Gravitation Using 21-Year Timing of Pulsar Binary J1713+0747
- Time-domain Implementation of the Optimal Cross-Correlation Statistic for Stochastic Gravitational-Wave Background Searches in Pulsar Timing Data
- Stochastic Gravitational Wave Background from Light Cosmic Strings
- A Micro-glitch in the Millisecond Pulsar B1821-24 in M28
- Detection, Localization and Characterization of Gravitational Wave Bursts in a Pulsar Timing Array
- Radio Astronomical Polarimetry and High-Precision Pulsar Timing
- Search for Memory and Inspiral Gravitational Waves from Super-Massive Binary Black Holes with Pulsar Timing Arrays
- Gravitational wave detection using pulsars: status of the Parkes Pulsar Timing Array project
- The NANOGrav 12.5-year data set: Search for Non-Einsteinian Polarization Modes in theGravitational-Wave Background
- Gravitational wave research using pulsar timing arrays
- Gravitational Waves from Light Cosmic Strings: Backgrounds and Bursts with Large Loops
- A Modified Scalar-Tensor-Vector Gravity Theory and the Constraint on its Parameters
- Pulsars as gravitational wave detectors
- Observing the dynamics of super-massive black hole binaries with Pulsar Timing Arrays
- Accelerated Bayesian model-selection and parameter-estimation in continuous gravitational-wave searches with pulsar-timing arrays
- Multi-messenger approaches to binary supermassive black holes in the "continuous-wave" regime
- The NANOGrav 12.5-year Data Set: Bayesian Limits on Gravitational Waves from Individual Supermassive Black Hole Binaries
- An Efficient Approximation to the Likelihood for Gravitational Wave Stochastic Background Detection Using Pulsar Timing Data
- Observational constraints on cosmic strings: Bayesian analysis in a three dimensional parameter space
- Pulsar timing array observations of gravitational wave source timing parallax
- Improving timing sensitivity in the microhertz frequency regime: limits from PSR J17130747 on gravitational waves produced by super-massive black-hole binaries
- Pulsars and Gravitational Wave Detection
- Pulsar Timing Perturbations from Galactic Gravitational Wave Bursts with Memory
- Minimum Requirements for Detecting a Stochastic Gravitational Wave Background Using Pulsars
- Limits on the strength of individual gravitational wave sources using high-cadence observations of PSR B1937+21
- Reading the tea leaves in the - and - diagrams: dry and gaseous mergers with remnant angular momentum
- On the complementarity of pulsar timing and space laser interferometry for the individual detection of supermassive black hole binaries
- Constraints on individual supermassive binary black holes using observations of PSR J1909-3744
- Extending gravitational wave burst searches with pulsar timing arrays
- Is there potential complementarity between LISA and pulsar timing?
- Pulsar timing and spacetime curvature
- Warping and tearing of misaligned circumbinary disks around eccentric SMBH binaries
- Warped Circumbinary Disks in Active Galactic Nuclei