Crustal lattice pressure as a source of neutron star mountains
Crustal lattice pressure as a source of neutron star mountains
The spin frequencies of neutron stars in low-mass X-ray binaries may be limited by the emission of gravitational waves. A candidate for producing such steady emission is a mass asymmetry, or 'mountain', sourced by temperature asymmetries in the star's crust. A number of studies have examined temperature-induced shifts in the crustal capture layers between one nuclear species and another to produce this asymmetry, with the presence of capture layers in the deep crust being needed to produce the required mass asymmetries. However, modern equation of state calculations cast doubt on the existence of such deep capture layers. Motivated by this, we investigated an alternative source of temperature dependence in the equation of state, coming from the pressure supplied by the solid crustal lattice itself. We show that temperature-induced perturbations in this pressure, while small, may be significant. We therefore advocate for more detailed calculations, self-consistently calculating both the temperature asymmetries, the perturbations in crustal lattice pressure, and the consequent mass asymmetries, to establish if this is a viable mechanism for explaining the observed distribution of low-mass X-ray binary spin frequencies. Furthermore, the crustal lattice pressure mechanism does not require accretion, extending the possibility for such thermoelastic mountains to include both accreting and isolated neutron stars.
2349-2358
Jones, D.I.
b8f3e32c-d537-445a-a1e4-7436f472e160
Hutchins, T.J.
4873dc98-1d21-4512-b498-2a79a9bdfe14
10 June 2025
Jones, D.I.
b8f3e32c-d537-445a-a1e4-7436f472e160
Hutchins, T.J.
4873dc98-1d21-4512-b498-2a79a9bdfe14
Jones, D.I. and Hutchins, T.J.
(2025)
Crustal lattice pressure as a source of neutron star mountains.
Monthly Notices of the Royal Astronomical Society, 540 (3), .
(doi:10.1093/mnras/staf784).
Abstract
The spin frequencies of neutron stars in low-mass X-ray binaries may be limited by the emission of gravitational waves. A candidate for producing such steady emission is a mass asymmetry, or 'mountain', sourced by temperature asymmetries in the star's crust. A number of studies have examined temperature-induced shifts in the crustal capture layers between one nuclear species and another to produce this asymmetry, with the presence of capture layers in the deep crust being needed to produce the required mass asymmetries. However, modern equation of state calculations cast doubt on the existence of such deep capture layers. Motivated by this, we investigated an alternative source of temperature dependence in the equation of state, coming from the pressure supplied by the solid crustal lattice itself. We show that temperature-induced perturbations in this pressure, while small, may be significant. We therefore advocate for more detailed calculations, self-consistently calculating both the temperature asymmetries, the perturbations in crustal lattice pressure, and the consequent mass asymmetries, to establish if this is a viable mechanism for explaining the observed distribution of low-mass X-ray binary spin frequencies. Furthermore, the crustal lattice pressure mechanism does not require accretion, extending the possibility for such thermoelastic mountains to include both accreting and isolated neutron stars.
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staf784
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Accepted/In Press date: 2 May 2025
e-pub ahead of print date: 16 May 2025
Published date: 10 June 2025
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Local EPrints ID: 512109
URI: http://eprints.soton.ac.uk/id/eprint/512109
ISSN: 0035-8711
PURE UUID: 6fcd06d7-ad2a-42b6-bd2d-2cfea60e2829
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Date deposited: 16 Jun 2026 16:45
Last modified: 07 Aug 2026 01:43
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Author:
T.J. Hutchins
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