Prospects for joint gravitational-wave and electromagnetic observations of neutron-star--black-hole coalescing binaries
Francesco Pannarale, Frank Ohme

TL;DR
This paper explores the potential of joint gravitational-wave and electromagnetic observations of neutron-star--black-hole binaries to improve source characterization, constrain neutron star properties, and enhance detection efficiency.
Contribution
It combines semi-analytical models with GW detection estimates to identify cases supporting or excluding SGRB ignition and proposes methods to improve GW search algorithms.
Findings
Joint GW and EM observations can constrain neutron star equation of state.
Certain system parameters determine the likelihood of SGRB ignition.
The approach can reduce GW search templates by about half.
Abstract
Coalescing neutron-star-black-hole (NS-BH) binaries are a promising source of gravitational-wave (GW) signals detectable with large-scale laser interferometers such as Advanced LIGO and Virgo. They are also one of the main short gamma-ray burst (SGRB) progenitor candidates. If the BH tidally disrupts its companion, an SGRB may be ignited when a sufficiently massive accretion disk forms around the remnant BH. Detecting an NS-BH coalescence both in the GW and electromagnetic (EM) spectrum offers a wealth of information about the nature of the source. How much can actually be inferred from a joint detection is unclear, however, as a mass/spin degeneracy may reduce the GW measurement accuracy. To shed light on this problem and on the potential of joint EM+GW observations, we here combine recent semi-analytical predictions for the remnant disk mass with estimates of the parameter-space…
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