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Numerical Simulations of Dark Matter Admixed Neutron Star Binaries
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Multi-messenger observations of compact binary mergers provide a new way to constrain the nature of dark matter that may accumulate in and around neutron stars. In this article, we extend the infrastructure of our numerical-relativity code BAM to enable the simulation of neutron stars that contain an additional mirror dark matter component. We perform single star tests to verify our code and the first binary neutron star simulations of this kind. We find that the presence of dark matter reduces the lifetime of the merger remnant and favors a prompt collapse to a black hole. Furthermore, we find differences in the merger time for systems with the same total mass and mass ratio, but different amounts of dark matter. Finally, we find that electromagnetic signals produced by the merger of binary neutron stars admixed with dark matter are very unlikely to be as bright as their dark matter free counterparts. Given the increasing sensitivity of multi-messenger facilities, our analysis gives a new perspective on how to probe the presence of dark matter.
Forward citations
Cited by 3 Pith papers
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Numerical Relativity Simulations of Dark Matter Admixed Binary Neutron Stars
First consistent numerical simulations of dark-matter-admixed neutron star mergers show that dark matter cores favor black hole collapse, halos form common envelopes, and standard tidal deformability calculations fail...
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Amplified capture rate of dark matter in compact binaries and constraints on bosonic dark matter from GW170817
Dark matter capture onto neutron stars is amplified by about 4-5 times in circular binaries, tightening cross-section limits from GW170817 and capping the accreted DM fraction near 1e-3.
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Supernova Remnants with Mirror Dark Matter and Hyperons
Mirror dark matter inside proto-neutron stars reduces maximum mass, radius, and tidal deformability while heating the remnant and raising the speed of sound.
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