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    Gravitational-wave constraints on neutron-star pressure anisotropy via universal relations

    Victor Guedes1,*, Siddarth Ajith1, Shu Yan Lau2, and Kent Yagi1

    • *Contact author: tpx5df@virginia.edu

    Phys. Rev. D 113, 043025 – Published 13 February, 2026

    DOI: https://doi.org/10.1103/s9zp-jfnh

    Abstract

    Neutron stars may exhibit pressure anisotropy arising from various physical mechanisms, such as elasticity, magnetic fields, viscosity, and superfluidity. We compute the tidal deformability and the f-mode oscillation frequency of anisotropic neutron stars using a phenomenological quasilocal model characterized by a single dimensionless anisotropy parameter. We find that while the relation between the tidal deformability and the f-mode frequency depends on the degree of anisotropy, it remains largely insensitive to variations in the equation of state (the relation between radial pressure and energy density) for a fixed anisotropy parameter, similar to the isotropic case. Leveraging this anisotropy-dependent universal relation within a statistical framework, we place constraints on the anisotropy parameter using both the gravitational-wave observation of GW170817 and simulated data for a GW170817-like event observed by a future network of detectors. We find that the anisotropy parameter can be constrained to order unity with current data, and the bounds remain comparable with future detector sensitivities. Importantly, these constraints are only weakly affected by uncertainties in the neutron-star equation of state.

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