Gravitational-wave memory revisited: memory from the merger and recoil of binary black holes
arXiv:0811.3451 · doi:10.1088/1742-6596/154/1/012043
Abstract
Gravitational-wave memory refers to the permanent displacement of the test masses in an idealized (freely-falling) gravitational-wave interferometer. Inspiraling binaries produce a particularly interesting form of memory--the Christodoulou memory. Although it originates from nonlinear interactions at 2.5 post-Newtonian order, the Christodoulou memory affects the gravitational-wave amplitude at leading (Newtonian) order. Previous calculations have computed this non-oscillatory amplitude correction during the inspiral phase of binary coalescence. Using an "effective-one-body" description calibrated with the results of numerical relativity simulations, the evolution of the memory during the inspiral, merger, and ringdown phases, as well as the memory's final saturation value, are calculated. Using this model for the memory, the prospects for its detection are examined, particularly for supermassive black hole binary coalescences that LISA will detect with high signal-to-noise ratios. Coalescing binary black holes also experience center-of-mass recoil due to the anisotropic emission of gravitational radiation. These recoils can manifest themselves in the gravitational-wave signal in the form of a "linear" memory and a Doppler shift of the quasi-normal-mode frequencies. The prospects for observing these effects are also discussed.
6 pages, 2 figures; accepted to the proceedings of the 7th International LISA Symposium; v2: updated figures and signal-to-noise ratios, several minor changes to the text
References in corpus (12)
- Total recoil: the maximum kick from nonspinning black-hole binary inspiral
- The third post-Newtonian gravitational wave polarisations and associated spherical harmonic modes for inspiralling compact binaries in quasi-circular orbits
- Recoil velocities from equal-mass binary black-hole mergers: a systematic investigation of spin-orbit aligned configurations
- Accurate Effective-One-Body waveforms of inspiralling and coalescing black-hole binaries
- Observable Signatures of a Black Hole Ejected by Gravitational Radiation Recoil in a Galaxy Merger
- Mergers of nonspinning black-hole binaries: Gravitational radiation characteristics
- The Infrared Afterglow of Supermassive Black Hole Mergers
- Powerful flares from recoiling black holes in quasars
- An overview of the second round of the Mock LISA Data Challenges
- Off-nuclear AGN as a signature of recoiling massive black holes
- Introductory lectures on the Effective One Body formalism
- Gamma-ray emission from dark matter wakes of recoiled black holes
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- Post-Newtonian corrections to the gravitational-wave memory for quasicircular, inspiralling compact binaries
- Nonlinear gravitational-wave memory from binary black hole mergers
- The Gravitational-Wave Physics II: Progress
- Searching for gravitational wave memory bursts with the Parkes Pulsar Timing Array
- Hunt for Light Primordial Black Hole Dark Matter with Ultra-High-Frequency Gravitational Waves
- Gravitational memory in binary black hole mergers
- Adding Gravitational Memory to Waveform Catalogs using BMS Balance Laws
- Observing gravitational wave bursts in pulsar timing measurements
- The gravitational-wave memory from eccentric binaries
- Black hole kicks as new gravitational wave observables
- Possible Causes of False General Relativity Violations in Gravitational Wave Observations
- Remnant Black Hole Kicks and Implications for Hierarchical Mergers
- Gravitational wave memory beyond general relativity
- A simple estimate of gravitational wave memory in binary black hole systems
- Challenges and Opportunities of Gravitational Wave Searches above 10 kHz
- Inferring the gravitational wave memory for binary coalescence events
- Leveraging gravitational-wave memory to distinguish neutron star--black hole binaries from black hole binaries
- Frequency-domain waveform approximants capturing Doppler shifts
- Gravitational wave memory and its tail in cosmology
- Accurate calculation of gravitational wave memory
- Conserved charges in Chern-Simons modified theory and memory effects
- Nonlinear gravitational-wave memory from cusps and kinks on cosmic strings
- Testing general relativity via direct measurement of black hole kicks
- Effect of kick velocity on gravitational wave detection of binary black holes with space- and ground-based detectors
- Can the Near-Horizon Black Hole Memory be detected through Binary Inspirals?
- On the Gravitational Hysteresis in the Kinetic Theory
- Gravitational lensing of gravitational waves: universal characteristics of strongly lensed memory waveforms
- Gravitational memory meets astrophysical environments: exploring a new frontier through osculations
- Gravitational waves from parabolic encounters: A study of linear and nonlinear memory