PaperPanorama

arXiv:2610.10007·v1·High Energy Astrophysical Phenomena

Composition -modes and -modes of neutron stars with gravitationally coupled dark matter: degeneracy with the symmetry energy

Probit J Kalita · Bharat Kumar · H C Das

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Abstract

Composition gravity () modes have been proposed as a probe of dark matter in neutron stars, on the basis of one-fluid models in which the dark matter is in chemical equilibrium with the neutrons. We computed in full general relativity the - and -modes of stars in which fermionic dark matter couples to the nucleons only through gravity, and inferred the dark mass fraction from NICER and GW170817 data with a prior that comprises nucleonic equations of state (EOSs) from Skyrme and relativistic mean-field functionals, among them the models of Dutra \textit{et al.} and of the compilation of Sun, Bhattiprolu and Lattimer. The data do not prefer dark matter and bound its mass fraction at () for particle masses of --~GeV. Coupled only through gravity, the dark matter reaches the buoyancy that restores a -mode only through the gravitational field: a dark core holding of the mass raises the fundamental -mode by at fixed EOS, several times less than in the one-fluid picture. The larger effect is indirect: a star with a dark core needs a stiffer nucleonic EOS, and since the -mode is set by the density dependence of the symmetry energy, its frequency reflects the EOS that the star requires rather than the dark matter it contains; at fixed radius and symmetry energy a core holding of the mass is equivalent to a change of the slope of ~MeV. The -mode, which follows the mean density, behaves differently: a dark core breaks the relation between the -mode and the tidal deformability by about one percent, far outside the posterior spread of nucleonic stars.

Comments: 5 figures. Comments welcome