Parameter Estimation for Tests of General Relativity with the Astrophysical Stochastic Gravitational Wave Background
arXiv:2003.11128 · doi:10.1103/PhysRevD.102.024001
Abstract
Recent observations of gravitational waves from binary black holes and neutron stars allow us to probe the strong and dynamical field regime of gravity. On the other hand, a collective signal from many individual, unresolved sources results in what is known as a stochastic background. We here consider probing gravity with such a background from stellar-mass binary black hole mergers. We adopt a simple power-law spectrum and carry out a parameter estimation study with a network of current and future ground-based detectors by including both general relativistic and beyond general relativistic variables. For a network of second-generation detectors, we find that one can place meaningful bounds on the deviation parameter in the gravitational-wave amplitude if it enters at a sufficiently negative post-Newtonian order. However, such future bounds from a stochastic background are weaker than existing bounds from individual sources, such as GW150914 and GW151226. We also find that systematic errors due to mismodeling of the spectrum is much smaller than statistical errors, which justifies our use of the power-law model. Regarding a network of third-generation detectors, we find that the bounds on the deviation parameter from statistical errors improve upon the second-generation case, though systematic errors now dominate the error budget and thus one needs to use a more realistic spectrum model. We conclude that individual sources seem to be more powerful in probing general relativity than the astrophysical stochastic background.
10 pages, 6 figures, submitted to Phys. Rev. D
References in corpus (22)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Advanced Virgo: a 2nd generation interferometric gravitational wave detector
- The Confrontation between General Relativity and Experiment
- Multi-messenger Observations of a Binary Neutron Star Merger
- GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence
- Scientific Objectives of Einstein Telescope
- Particle Physics Implications of a Recent Test of the Gravitational Inverse Square Law
- LISA detections of massive black hole inspirals: parameter extraction errors due to inaccurate template waveforms
- Probing non-tensorial polarizations of stochastic gravitational-wave backgrounds with ground-based laser interferometers
- Sensitivity to a Frequency-Dependent Circular Polarization in an Isotropic Stochastic Gravitational Wave Background
- Testing gravitational parity violation with coincident gravitational waves and short gamma-ray bursts
- Measuring a Parity Violation Signature in the Early Universe via Ground-based Laser Interferometers
- A gravitational-wave probe of effective quantum gravity
- Noncommutative Gravity
- Polarization analysis of gravitational-wave backgrounds from the correlation signals of ground-based interferometers: measuring a circular-polarization mode
- Prospects for direct detection of circular polarization of gravitational-wave background
- Pulsars and Gravity
- Parameterized and inspiral-merger-ringdown consistency tests of gravity with multi-band gravitational wave observations
- Quest for circular polarization of gravitational wave background and orbits of laser interferometers in space
- Constraining non-commutative space-time from GW150914
- Constraining alternative polarization states of gravitational waves from individual black hole binaries using pulsar timing arrays
- Scalar Stochastic Gravitational-Wave Background in Brans-Dicke Theory of Gravity
Cited by in corpus (8)
- New Horizons for Fundamental Physics with LISA
- Modeling and searching for a stochastic gravitational-wave background from ultralight vector bosons
- Simultaneous estimation of astrophysical and cosmological stochastic gravitational-wave backgrounds with terrestrial detectors
- Hearing gravity from the cosmos: GWTC-2 probes general relativity at cosmological scales
- Searching for modified gravity in the astrophysical gravitational wave background: Application to ground-based interferometers
- Resonant gravitational waves in dynamical Chern-Simons-axion gravity
- Forecast Analysis of Astrophysical Stochastic Gravitational Wave Background beyond general relativity: A Case Study on Brans-Dicke Gravity
- Alternative LISA-TAIJI networks: detectability of the isotropic stochastic gravitational wave background