Bright transients from strongly-magnetized neutron star-black hole mergers
Abstract
Direct detection of black hole-neutron star pairs is anticipated with the advent of aLIGO. Electromagnetic counterparts may be crucial for a confident gravitational-wave detection as well as for extraction of astronomical information. Yet black hole-neutron star pairs are notoriously dark and so inaccessible to telescopes. Contrary to this expectation, a bright electromagnetic transient can occur in the final moments before merger as long as the neutron star is highly magnetized. The orbital motion of the neutron star magnet creates a Faraday flux and corresponding power available for luminosity. A spectrum of curvature radiation ramps up until the rapid injection of energy ignites a fireball, which would appear as an energetic blackbody peaking in the x ray to rays for neutron star field strengths ranging from G to G respectively and a black hole. The fireball event may last from a few milliseconds to a few seconds depending on the neutron star magnetic-field strength, and may be observable with the Fermi Gamma-Ray Burst Monitor with a rate up to a few per year for neutron star field strengths G. We also discuss a possible decaying post-merger event which could accompany this signal. As an electromagnetic counterpart to these otherwise dark pairs, the black-hole battery should be of great value to the development of multi-messenger astronomy in the era of aLIGO.
Keywords
Cite
@article{arxiv.1601.00017,
title = {Bright transients from strongly-magnetized neutron star-black hole mergers},
author = {Daniel J. D'Orazio and Janna Levin and Norman W. Murray and Larry Price},
journal= {arXiv preprint arXiv:1601.00017},
year = {2016}
}
Comments
Published in Physical Review D