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    Surface gravity wave on a neutron star ocean trapped around a magnetic pole

    Shin’ichirou Yoshida*

    • Department of Earth Science and Astronomy, Graduate School of Arts and Sciences, The University of Tokyo Komaba 3-8-1, Meguro-ku, Tokyo 153-8902, Japan

    • *Contact author: syoshida@g.ecc.u-tokyo.ac.jp

    Phys. Rev. D 114, 063019 – Published 8 September, 2026

    DOI: https://doi.org/10.1103/1x62-nw3p

    Abstract

    A warm neutron star is expected to have a fluid “ocean” of heavy elements at its outermost part of the outer crust. As is on the terrestrial ocean, the neutron star ocean also has surface gravity waves. Around a magnetic pole of a star, the ocean may have a dip due to the strong magnetic pressure coming into play in the hydrostatic balance of the ocean. The dip enables the surface gravity wave to be trapped around the magnetic pole to form eigenmodes. The frequency of the mode is much lower than the dynamical frequency at the stellar surface, owing to the weak Coriolis force and the gradient in the ocean’s depth that makes the eigenmodes present. We solve the equation of surface gravity waves in the local β-plane approximation and obtain the spectrum of discrete eigenmodes. We see that there are no axisymmetric modes and that the mode frequency decreases and asymptotes to zero as the number of nodes of the corresponding eigenfunction increases. This is reminiscent of the g-modes in the context of asteroseismology. Observations of x-ray binaries containing neutron stars reveal that some of the systems exhibit low-frequency quasiperiodic oscillations (QPOs) whose frequency is 1−103  mHz. We investigate whether the eigenmodes considered here may explain the low-frequency QPO spectrum. It is suggested that some of the QPOs in the system whose neutron star spins at the period less than 10s may be consistent with the model. As far as the spin period is larger than 10s, the eigenmode frequencies are too low to explain the observed QPOs.

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