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A brief overview of black hole-neutron star mergers
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A brief overview of black hole-neutron star mergers
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Of the three main types of binaries detectable through ground-based gravitational wave observations, black hole-neutron star (BHNS) mergers remain the most elusive. While candidates BHNS exist in the triggers released during the third observing run of the Advanced LIGO/Virgo collaboration, no detection has been confirmed so far. As for binary neutron star systems, BHNS binaries allow us to explore a wide range of physical processes, including the neutron star equation of state, nucleosynthesis, stellar evolution, high-energy astrophysics, and the expansion of the Universe. Here, we review some of the main features of BHNS systems: the distinction between disrupting and non-disrupting binaries, the types of outflows that BHNS mergers can produce, and the information that can be extracted from the observation of their gravitational wave and electromagnetic signals. We also emphasize that for the most likely binary parameters, BHNS mergers seem less likely to power electromagnetic signals than binary neutron star systems. Finally, we discuss some of the issues that still limit our ability to model and interpret electromagnetic signals from BHNS binaries.
Forward citations
Cited by 2 Pith papers
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Impact of eccentricity and higher-modes on neutron star-black hole parameter estimation
Eccentric NSBH signals like GW200105 contain much more information about masses, mass ratio, and effective spin per unit SNR than circular signals, but not about sky position or distance.
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Impact of eccentricity and higher-modes on neutron star-black hole parameter estimation
Eccentricity in neutron star–black hole mergers sharply tightens measurements of intrinsic parameters like mass ratio and effective spin, but gives almost no improvement in distance or sky localization.
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