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    Gravitational-wave signatures of the mirror asymmetry in binary black hole mergers: Measurability and correlation to gravitational-wave recoil

    Samson H. W. Leong1,*, Alejandro Florido Tomé2,†, Juan Calderón Bustillo3,1, Adrián del Río4, and Nicolas Sanchis-Gual2

    • *Contact author: samson.leong@link.cuhk.edu.hk
    • †Contact author: afloto@alumni.uv.es

    Phys. Rev. D 112, 084078 – Published 29 October, 2025

    DOI: https://doi.org/10.1103/1nnp-w5w4

    Abstract

    Precessing binary black-hole mergers can produce a net flux of circularly polarized gravitational waves. This imbalance between left- and right-handed circularly polarized waves, quantified via the Stokes pseudoscalar VGW, originated from mirror asymmetries in the binary. We scan the parameter space of black-hole mergers to investigate correlations between VGW and chiral magnitudes constructed out of the intrinsic parameters of the binary. To this end, we use both numerical-relativity simulations for quasicircular and eccentric precessing mergers from both the SXS and RIT catalogs, as well as the state-of-the-art surrogate model for quasicircular precessing mergers NRSur7dq4. We find that, despite being computed by manifestly different formulas, VGW is linearly correlated to the helicity of the final black hole, defined as the projection of its recoil velocity onto its spin. Next, we test our ability to perform accurate measurements of VGW in gravitational-wave observations through the injection and recovery of numerically simulated signals. We show that VGW can be estimated unbiasedly using the surrogate waveform model NRSur7dq4 even for signal-to-noise ratios of nearly 50, way beyond current gravitational-wave observations.

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