The information content of gravitational wave harmonics in compact binary inspiral
arXiv:gr-qc/0207102 · doi:10.1088/0264-9381/20/10/321
Abstract
The nonlinear aspect of gravitational wave generation that produces power at harmonics of the orbital frequency, above the fundamental quadrupole frequency, is examined to see what information about the source is contained in these higher harmonics. We use an order (4/2) post-Newtonian expansion of the gravitational wave waveform of a binary system to model the signal seen in a spaceborne gravitational wave detector such as the proposed LISA detector. Covariance studies are then performed to determine the ultimate accuracy to be expected when the parameters of the source are fit to the received signal. We find three areas where the higher harmonics contribute crucial information that breaks degeneracies in the model and allows otherwise badly-correlated parameters to be separated and determined. First, we find that the position of a coalescing massive black hole binary in an ecliptic plane detector, such as OMEGA, is well-determined with the help of these harmonics. Second, we find that the individual masses of the stars in a chirping neutron star binary can be separated because of the mass dependence of the harmonic contributions to the wave. Finally, we note that supermassive black hole binaries, whose frequencies are too low to be seen in the detector sensitivity window for long, may still have their masses, distances, and positions determined since the information content of the higher harmonics compensates for the information lost when the orbit-induced modulation of the signal does not last long enough to be apparent in the data.
13 pages, 5 figures
Cited by in corpus (26)
- Wave Effects in Gravitational Lensing of Gravitational Waves from Chirping Binaries
- Higher-order spin effects in the amplitude and phase of gravitational waveforms emitted by inspiraling compact binaries: Ready-to-use gravitational waveforms
- The third post-Newtonian gravitational wave polarisations and associated spherical harmonic modes for inspiralling compact binaries in quasi-circular orbits
- Parameter estimation of inspiralling compact binaries using 3.5 post-Newtonian gravitational wave phasing: The non-spinning case
- Post-Circular Expansion of Eccentric Binary Inspirals: Fourier-Domain Waveforms in the Stationary Phase Approximation
- Measuring coalescing massive binary black holes with gravitational waves: The impact of spin-induced precession
- Using Full Information When Computing Modes of Post-Newtonian Waveforms From Inspiralling Compact Binaries in Circular Orbit
- The 2.5PN gravitational wave polarisations from inspiralling compact binaries in circular orbits
- Accurate and efficient waveforms for compact binaries on eccentric orbits
- Higher signal harmonics, LISA's angular resolution, and dark energy
- Massive Black Hole Binary Inspirals: Results from the LISA Parameter Estimation Taskforce
- The Missing Link: Bayesian Detection and Measurement of Intermediate-Mass Black-Hole Binaries
- Pre-Merger Localization of Gravitational-Wave Standard Sirens With LISA: Triggered Search for an Electromagnetic Counterpart
- Binary black hole spectroscopy
- Phenomenology of amplitude-corrected post-Newtonian gravitational waveforms for compact binary inspiral. I. Signal-to-noise ratios
- Bounding the mass of the graviton with gravitational waves: Effect of higher harmonics in gravitational waveform templates
- Gravitational-Wave Phasing of Quasi-Circular Compact Binary Systems to the Fourth-and-a-Half post-Newtonian Order
- Localizing coalescing massive black hole binaries with gravitational waves
- The Effect of Higher Harmonic Corrections on the Detection of massive black hole binaries with LISA
- LISA observations of massive black hole mergers: event rates and issues in waveform modelling
- LISA as a dark energy probe
- Parameter estimation of coalescing supermassive black hole binaries with LISA
- Massive Black Hole Science with eLISA
- Constraining the Black Hole Mass Spectrum with Gravitational Wave Observations I: The Error Kernel
- Parameter estimation of neutron star-black hole binaries using an advanced gravitational-wave detector network: Effects of the full post-Newtonian waveform
- Verifying black hole orbits with gravitational spectroscopy