Constraining neutron star radii in black hole-neutron star mergers from their electromagnetic counterparts
arXiv:2101.07313 · doi:10.1093/mnras/stab666
Abstract
Mergers of black hole (BH) and neutron star (NS) binaries are of interest since the emission of gravitational waves (GWs) can be followed by an electromagnetic (EM) counterpart, which could power short gamma-ray bursts. Until now, LIGO/Virgo has only observed a candidate BH-NS event, GW190426\_152155, which was not followed by any EM counterpart. We discuss how the presence (absence) of a remnant disk, which powers the EM counterpart, can be used along with spin measurements by LIGO/Virgo to derive a lower (upper) limit on the radius of the NS. For the case of GW190426\_152155, large measurement errors on the spin and mass ratio prevent from placing an upper limit on the NS radius. Our proposed method works best when the aligned component of the BH spin (with respect to the orbital angular momentum) is the largest, and can be used to complement the information that can be extracted from the GW signal to derive valuable information on the NS equation of state.
6 pages, 3 figures, accepted by MNRAS
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- On accretion disks formed in MHD simulations of black hole-neutron star mergers with accurate microphysics
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- Impact of natal kicks on merger rates and spin-orbit misalignments of black hole -- neutron star mergers
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