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- W2088656436 abstract "We study the influence of astrophysical formation scenarios on the precessional dynamics of spinning black-hole binaries by the time they enter the observational window of second- and third-generation gravitational-wave detectors, such as Advanced LIGO/Virgo, LIGO-India, KAGRA, and the Einstein Telescope. Under the plausible assumption that tidal interactions are efficient at aligning the spins of few-solar mass black-hole progenitors with the orbital angular momentum, we find that black-hole spins should be expected to preferentially lie in a plane when they become detectable by gravitational-wave interferometers. This ``resonant plane'' is identified by the conditions $ensuremath{Delta}ensuremath{Phi}=0ifmmode^circelsetextdegreefi{}$ or $ensuremath{Delta}ensuremath{Phi}=ifmmodepmelsetextpmfi{}180ifmmode^circelsetextdegreefi{}$, where $ensuremath{Delta}ensuremath{Phi}$ is the angle between the components of the black-hole spins in the plane orthogonal to the orbital angular momentum. If the angles $ensuremath{Delta}ensuremath{Phi}$ can be accurately measured for a large sample of gravitational-wave detections, their distribution will constrain models of compact binary formation. In particular, it will tell us whether tidal interactions are efficient and whether a mechanism such as mass transfer, stellar winds, or supernovae can induce a mass-ratio reversal (so that the heavier black hole is produced by the initially lighter stellar progenitor). Therefore, our model offers a concrete observational link between gravitational-wave measurements and astrophysics. We also hope that it will stimulate further studies of precessional dynamics, gravitational-wave template placement, and parameter estimation for binaries locked in the resonant plane." @default.
- W2088656436 created "2016-06-24" @default.
- W2088656436 creator A5037412711 @default.
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- W2088656436 creator A5087296933 @default.
- W2088656436 creator A5091293746 @default.
- W2088656436 date "2013-05-22" @default.
- W2088656436 modified "2023-10-17" @default.
- W2088656436 title "Resonant-plane locking and spin alignment in stellar-mass black-hole binaries: A diagnostic of compact-binary formation" @default.
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- W2088656436 doi "https://doi.org/10.1103/physrevd.87.104028" @default.
- W2088656436 hasPublicationYear "2013" @default.
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