Accurate gravitational waveforms for binary-black-hole mergers with nearly extremal spins
Geoffrey Lovelace, Michael Boyle, Mark A. Scheel, Bela Szilagyi

TL;DR
This paper presents highly accurate numerical gravitational waveforms from binary black hole mergers with nearly extremal spins, compares them with post-Newtonian models, and discusses implications for gravitational wave detection.
Contribution
It provides the highest-spin binary black hole waveforms to date and analyzes their agreement with analytic predictions and post-Newtonian approximations.
Findings
Horizon mass and spin evolution match analytic predictions during inspiral.
Remnant spin agrees with analytic models within uncertainties.
Post-Newtonian waveforms show significant disagreement before merger.
Abstract
Motivated by the possibility of observing gravitational waves from merging black holes whose spins are nearly extremal (i.e., 1 in dimensionless units), we present numerical waveforms from simulations of merging black holes with the highest spins simulated to date: (1) a 25.5-orbit inspiral, merger, and ringdown of two holes with equal masses and spins of magnitude 0.97 aligned with the orbital angular momentum; and (2) a previously reported 12.5-orbit inspiral, merger, and ringdown of two holes with equal masses and spins of magnitude 0.95 anti-aligned with the orbital angular momentum. First, we consider the horizon mass and spin evolution of the new aligned-spin simulation. During the inspiral, the horizon area and spin evolve in remarkably close agreement with Alvi's analytic predictions, and the remnant hole's final spin agrees reasonably well with several analytic predictions. We…
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