Quasi-universality of the magnetic deformation for neutron stars in general relativity and beyond
arXiv:2110.09301
Abstract
Neutron stars harbour extremely powerful magnetic fields, leading to their shape being deformed. Their magnetic deformation depends both on the geometry - and strength - of their internal magnetic field and on their composition, encoded by the equation of state. However, both the details of the internal magnetic structure and the equation of state of the innermost part of neutron stars are mostly unkown. We performed a study of numerical models of magnetised, static, axisymmetric neutron stars in general relativity and in one of its most promising extensions, scalar-tensor theories. We did so by using several realistic equations of state currently allowed by observational and nuclear physics constraints, considering also those for strange quark stars. We show that it is possible to find simple relations among the magnetic deformation of a neutron star, its Komar mass, and its circumferential radius in the case of purely poloidal and purely toroidal magnetic configurations satisfying the equilibrium criterion in the Bernoulli formalism. These relations are quasi-universal, in the sense that they mostly do not depend on the equation of state. Our results, being formulated in terms of potentially observable quantities, could help to understand the magnetic properties of neutron stars interiors and the detectability of continuous gravitational waves by isolated neutron stars, independently of their equation of state. In the case of scalar-tensor theories, these relations depend also on the scalar charge of the neutron stars, thus potentially providing a new way to set constraints on the theory of gravitation.
19 pages, 5 figures, submitted as proceeding to the Sixteenth Marcel Grossmann Meeting, this article draws heavily from arXiv:2106.00603
References in corpus (19)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- The Confrontation between General Relativity and Experiment
- Neutron Star Asteroseismology. Axial Crust Oscillations in the Cowling Approximation
- I-Love-Q, Spontaneously: Slowly Rotating Neutron Stars in Scalar-Tensor Theories
- Ghosts, Instabilities, and Superluminal Propagation in Modified Gravity Models
- First 100 ms of a long-lived magnetized neutron star formed in a binary neutron star merger
- Critical Density and Impact of Resonance Formation in Neutron Stars
- Rapidly rotating neutron stars with a massive scalar field - structure and universal relations
- General relativistic neutron stars with twisted magnetosphere
- General relativistic models for rotating magnetized neutron stars in conformally flat spacetime
- The role of currents distribution in general relativistic equilibria of magnetized neutron stars
- Limiting magnetic field for minimal deformation of a magnetised neutron star
- General relativistic magnetohydrodynamic dynamo in thick accretion disks: fully nonlinear simulations
- Millisecond Magnetars
- Constraining the scalar-tensor gravity theories with and without screening mechanisms by combined observations
- Equation of state constraints from multi-messenger observations of neutron star mergers
- Magnetic deformation of neutron stars in scalar-tensor theories
- Iron Line from Neutron Star Accretion Disks in Scalar Tensor Theories
- Nuclear-Physics Multi-Messenger Astrophysics Constraints on the Neutron-Star Equation of State: Adding NICER's PSR J0740+6620 Measurement