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    Transition-to-plunge self-force waveforms with a spinning primary

    Loïc Honet1,*, Lorenzo Küchler2,†, Adam Pound2,‡, and Geoffrey Compère1,§

    • *Contact author: loic.honet@ulb.be
    • Contact author: l.m.kuchler@soton.ac.uk
    • Contact author: A.Pound@soton.ac.uk
    • §Contact author: geoffrey.compere@ulb.be

    Phys. Rev. D 113, 044051 – Published 23 February, 2026

    DOI: https://doi.org/10.1103/sq6y-qv8h

    Abstract

    With the upcoming third-generation gravitational-wave detectors comes the need to build complete, faithful, and fast waveform models for asymmetric-mass-ratio compact binaries. Most efforts within the self-force community have focused on modeling these binaries’ inspiral regime, but for ground-based detectors the systems’ final merger can represent the dominant part of the signal. Recent work by three of us has extended the multiscale self-force framework through the transition-to-plunge and merger-ringdown regimes for nonspinning binaries. In this paper, we generalize the next-to-next-to-leading-order transition-to-plunge waveform model to include the spin of the primary black hole. We also improve the construction of composite inspiral-transition waveform models by performing a change of variables on the binary’s mechanical phase space during the transition to plunge. We provide detailed discussions of our numerical implementation and comparisons with numerical relativity simulations.

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