Axisymmetric equilibrium models for magnetised neutron stars in Scalar-Tensor Theories
arXiv:2005.12758 · doi:10.1051/0004-6361/202037918
Abstract
Among the possible extensions of General Relativity that have been put forward in order to address some long standing issues in our understanding of the Universe, Scalar-Tensor Theories have received a lot of attention for their simplicity. Interestingly, some of these predict a potentially observable non-linear phenomenon, known as \textit{spontaneous scalarisation}, in the presence of highly compact matter distributions, like the case of neutron stars. Neutron stars are ideal laboratories to investigate the properties of matter under extreme conditions, and in particular they are known to harbour the strongest magnetic fields in the Universe. Here, for the first time, we present a detailed study of magnetised neutron stars in Scalar-Tensor Theories. First, we show that the formalism developed for the study of magnetised neutron stars in General Relativity, based on the \textit{eXtended Conformally Flat Condition}, can easily be extended in the presence of a non-minimally coupled scalar field, retaining many of its numerical advantages. We then carry out a study of the parameter space considering the two extreme geometries of purely toroidal and purely poloidal magnetic fields, varying both the strength of the magnetic field and the intensity of scalarisation. We compare our results with magnetised general-relativistic solutions and un-magnetised scalarised solutions, showing how the mutual interplay between magnetic and scalar fields affect the magnetic and the scalarisation properties of neutron stars. In particular, we focus our discussion on magnetic deformability, maximum mass and range of scalarisation.
accepted for publication by A&A; minor language corrections; minor typos correction
References in corpus (38)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Multi-messenger Observations of a Binary Neutron Star Merger
- Gravitational Waves and Gamma-rays from a Binary Neutron Star Merger: GW170817 and GRB 170817A
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- The relativistic pulsar-white dwarf binary PSR J1738+0333 II. The most stringent test of scalar-tensor gravity
- Producing ultra-strong magnetic fields in neutron star mergers
- ECHO: an Eulerian Conservative High Order scheme for general relativistic magnetohydrodynamics and magnetodynamics
- Search for post-merger gravitational waves from the remnant of the binary neutron star merger GW170817
- Neutron-star mergers in scalar-tensor theories of gravity
- I-Love-Q, Spontaneously: Slowly Rotating Neutron Stars in Scalar-Tensor Theories
- Ghosts, Instabilities, and Superluminal Propagation in Modified Gravity Models
- Improved constrained scheme for the Einstein equations: An approach to the uniqueness issue
- First 100 ms of a long-lived magnetized neutron star formed in a binary neutron star merger
- Consistent neutron star models with magnetic field dependent equations of state
- Waveless Approximation Theories of Gravity
- Selected topics in scalar-tensor theories and beyond
- Binary Neutron Star Mergers and Short Gamma-Ray Bursts: Effects of Magnetic Field Orientation, Equation of State, and Mass Ratio
- Spontaneous growth of vector fields in gravity
- Rapidly rotating neutron stars with a massive scalar field - structure and universal relations
- Hydromagnetic Instabilities in Neutron Stars
- Relativistic stars with purely toroidal magnetic fields
- Rotating Collapse of Stellar Iron Cores in General Relativity
- Magnetic Field Generation in Stars
- Inevitable ghost and the degrees of freedom in f(R,G) gravity
- General relativistic neutron stars with twisted magnetosphere
- Quasiequilibrium sequences of binary neutron stars undergoing dynamical scalarization
- Hyperbolicity of scalar-tensor theories of gravity
- Spin frequency distributions of binary millisecond pulsars
- 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
- Testing scalar-tensor theories and PPN parameters in Earth orbit
- Equilibrium solutions of relativistic rotating stars with mixed poloidal and toroidal magnetic fields
- The internal composition of proto-neutron stars under strong magnetic fields
- Constraining the scalar-tensor gravity theories with and without screening mechanisms by combined observations
- Condition for directly testing scalar modes of gravitational waves by four detectors
- On the accuracy of the IWM-CFC approximation in differentially rotating relativistic stars
- Appearance of the prolate and the toroidal magnetic field dominated stars - Analytic approach
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- Spontaneous scalarization
- Quasi-universality of the magnetic deformation of neutron stars in general relativity and beyond
- Oscillations of Highly Magnetized Non-rotating Neutron Stars
- Oscillation dynamics of scalarized neutron stars
- Magnetic deformation of neutron stars in scalar-tensor theories
- Magnetic-induced Spontaneous Scalarization in Dynamcial Chern-Simons Gravity
- High angular momentum hot differentially rotating equilibrium star evolutions in conformally flat spacetime
- Methods for relativistic self-gravitating fluids: From binary neutron stars to black hole-disks and magnetized rotating neutron stars
- Effects of Dark Matter on the Spontaneous Scalarization in Neutron Stars
- Formation of a magnetized hybrid star with a purely toroidal field from phase-transition-induced collapse
- Gravitational wave signatures from the phase-transition-induced collapse of a magnetized neutron star
- Scalarized Hybrid Neutron Stars in Scalar Tensor Gravity
- Fundamental modes of rotating neutron stars with various degrees of differential rotation in dynamical spacetimes