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Dark Matter or Regular Matter in Neutron Stars? How to tell the difference from the coalescence of compact objects

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arxiv 2211.08590 v1 pith:77BND5ID submitted 2022-11-16 astro-ph.HE gr-qchep-phnucl-th

classification astro-ph.HEgr-qchep-phnucl-th
keywords mirrormatterneutronstarsmodeldarkobservationsbinary
verification ladder T0 review T1 audit T2 compute T3 formal

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The mirror twin Higgs model is a candidate for (strongly-interacting) complex dark matter, which mirrors SM interactions with heavier quark masses. A consequence of this model are mirror neutron stars -- exotic stars made entirely of mirror matter, which are significantly smaller than neutron stars and electromagnetically dark. This makes mergers of two mirror neutron stars detectable and distinguishable in gravitational wave observations, but can we observationally distinguish between regular neutron stars and those that may contain some mirror matter? This is the question we study in this paper, focusing on two possible realizations of mirror matter coupled to standard model matter within a compact object: (i) mirror matter captured by a neutron star and (ii) mirror neutron star-neutron star coalescences. Regarding (i), we find that (non-rotating) mirror-matter-admixed neutron stars no longer have a single mass-radius sequence, but rather exist in a two-dimensional mass-radius plane. Regarding (ii), we find that binary systems with mirror neutron stars would span a much wider range of chirp masses and completely different binary Love relations, allowing merger remnants to be very light black holes. The implications of this are that gravitational wave observations with advanced LIGO and Virgo, and X-ray observations with NICER, could detect or constrain the existence of mirror matter through searches with wider model and parameter priors.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Numerical Relativity Simulations of Dark Matter Admixed Binary Neutron Stars

    astro-ph.HE 2025-04 conditional novelty 7.0 of 10

    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...

  2. Probing Neutron Star Interiors and the Properties of Cold Ultra-dense Matter with the SKAO

    astro-ph.HE 2026-07 accept novelty 3.5 of 10

    SKAO's sensitivity, surveys and sub-arraying will deliver tighter NS mass, MoI, spin, glitch and precession constraints that, with X-ray and GW data, probe cold ultra-dense matter.

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