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Science with the space-based interferometer LISA. V. Extreme mass-ratio inspirals

Stanislav BabakJonathan GairAlberto SesanaEnrico BarausseCarlos F. SopuertaC. P. L. BerryEmanuele BertiPau Amaro‐SeoaneAntoine PetiteauAntoine Klein

Abstract

The space-based Laser Interferometer Space Antenna (LISA) will be able to observe the gravitational-wave signals from systems comprised of a massive black hole and a stellar-mass compact object. These systems are known as extreme-mass-ratio inspirals (EMRIs) and are expected to complete $\ensuremath{\sim}1{0}^{4}--1{0}^{5}$ cycles in band, thus allowing exquisite measurements of their parameters. In this work, we attempt to quantify the astrophysical uncertainties affecting the predictions for the number of EMRIs detectable by LISA, and find that competing astrophysical assumptions produce a variance of about three orders of magnitude in the expected intrinsic EMRI rate. However, we find that irrespective of the astrophysical model, at least a few EMRIs per year should be detectable by the LISA mission, with up to a few thousands per year under the most optimistic astrophysical assumptions. We also investigate the precision with which LISA will be able to extract the parameters of these sources. We find that typical fractional statistical errors with which the intrinsic parameters (redshifted masses, massive black hole spin and orbital eccentricity) can be recovered are $\ensuremath{\sim}{10}^{\ensuremath{-}6}--{10}^{\ensuremath{-}4}$. Luminosity distance (which is required to infer true masses) is inferred to about 10% precision and sky position is localized to a few square degrees, while tests of the multipolar structure of the Kerr metric can be performed to percent-level precision or better.

Pulsars and Gravitational Waves ResearchRadio Astronomy Observations and TechnologyGamma-ray bursts and supernovaePhysicsMass ratioGravitational waveRedshiftAstrophysicsLuminosity distanceBlack hole (networking)LuminositySpace (punctuation)Cosmic variance

Funding

  • National Science Foundation
  • Royal Society
  • Ministerio de Asuntos Económicos y Transformación Digital, Gobierno de España
  • Horizon 2020 Framework Programme
  • Science and Technology Facilities Council
  • Fundação para a Ciência e a Tecnologia
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References
Multipole moments of stationary space-times
Journal of Mathematical Physics · 1974 · 571 citations
Advanced Virgo: a second-generation interferometric gravitational wave detector
Classical and Quantum Gravity · 2014 · 3,931 citations
The Luminosity Function and Stellar Evolution.
The Astrophysical Journal · 1955 · 8,243 citations
Low-frequency gravitational-wave science with eLISA/NGO
Classical and Quantum Gravity · 2012 · 450 citations
On the variation of the initial mass function
Monthly Notices of the Royal Astronomical Society · 2001 · 7,117 citations
Gravitational waves from merging compact binaries: How accurately can one extract the binary’s parameters from the inspiral waveform?
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1994 · 1,554 citations
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