On the Rate of Detectability of Intermediate-Mass Black-Hole Binaries using LISA
arXiv:astro-ph/0403644 · doi:10.1086/422387
Abstract
We estimate the rate at which the proposed space gravitational-wave interferometer LISA could detect intermediate-mass black-hole binaries, that is, binaries containing a black hole in the mass range 10 -- 100 Msun orbiting a black hole in the mass range 100 -- 1000 Msun. For one-year integrations leading up to the innermost stable orbit, and a signal-to-noise ratio of 10, we estimate a detection rate of only 1 per million years for 10 Msun/100 Msun binaries. The estimate uses the method of parameter estimation via matched filtering, incorporates a noise curve for LISA established by the LISA Science Team that is available online, and employs an IMBH formation rate model used by Miller (2002). We find that the detectable distance is relatively insensitive to LISA arm lengths or acceleration noise, but is roughly inversely proportional to LISA position errors, and varies roughly as T^(1/2), where T is the integration time in years. We also show that, while all IMBH systems in this mass range may be detected in the Virgo cluster up to 40 years before merger, none can be detected there earlier than 400 years before merger. An extended LISA mission that enabled 10-year integrations could detect IMBH systems at the Virgo cluster 1000 years before merger, and systems in galactic globular clusters a million years before merger. We compare and contrast these estimates with earlier estimates by Miller (2002).
6 pages, 3 figures, added discussion of implications of 10-year LISA mission, accepted for publication in The Astrophysical Journal
References in corpus (2)
Cited by in corpus (30)
- Quasinormal modes of black holes and black branes
- Estimating spinning binary parameters and testing alternative theories of gravity with LISA
- Black Hole Mergers in Galactic Nuclei Induced by the Eccentric Kozai-Lidov Effect
- Stellar remnants in galactic nuclei: mass segregation
- Clusters of primordial black holes
- Growth of structure seeded by primordial black holes
- Descope of the ALIA mission
- Three-Body Dynamics with Gravitational Wave Emission
- Binary Encounters With Supermassive Black Holes: Zero-Eccentricity LISA Events
- Gravitational Waves and Intermediate-mass Black Hole Retention in Globular Clusters
- Orbital Evolution of Extreme-Mass-Ratio Black-Hole Binaries with Numerical Relativity
- Detection of IMBHs with ground-based gravitational wave observatories: A biography of a binary of black holes, from birth to death
- Testing general relativity and probing the merger history of massive black holes with LISA
- Detection Rate Estimates of Gravity-waves Emitted During Parabolic Encounters of Stellar Black Holes in Globular Clusters
- Observing IMBH-IMBH Binary Coalescences via Gravitational Radiation
- Merging stellar and intermediate-mass black holes in dense clusters: implications for LIGO, LISA and the next generation of gravitational wave detectors
- Detection of astrophysical gravitational wave sources by TianQin and LISA
- Intermediate-Mass Black Holes as LISA Sources
- LISA observations of massive black hole mergers: event rates and issues in waveform modelling
- Gravitational wave of intermediate-mass black holes in Population III star clusters
- Initial Populations of Black Holes in Star Clusters
- Gravitational waves from intermediate-mass black holes in young clusters
- Pulsar timing and the detection of black hole binary systems in globular clusters
- Gravitational waves from merging intermediate-mass black holes : II Event rates at ground-based detectors
- Globular clusters hosting intermediate-mass black-holes: no mass-segregation based candidates
- Mission Design for the TAIJI misson and Structure Formation in Early Universe
- Gravitational Wave Bursts from Collisions of Primordial Black Holes in Clusters
- Probing intermediate-mass black hole binaries with the Lunar Gravitational-wave Antenna
- Comparison of LISA and Atom Interferometry for Gravitational Wave Astronomy in Space
- Gravitational Dynamics of Large Stellar Systems