Tidal deformability and gravitational-wave phase evolution of magnetised compact-star binaries
arXiv:2005.02677 · doi:10.1103/PhysRevD.102.084058
Abstract
The evolution of the gravitational-wave phase in the signal produced by inspiralling binaries of compact stars is modified by the nonzero deformability of the two stars. Hence, the measurement of these corrections has the potential of providing important information on the equation of state of nuclear matter. Extensive work has been carried out over the last decade to quantify these corrections, but it has so far been restricted to stars with zero intrinsic magnetic fields. While the corrections introduced by the magnetic tension and magnetic pressure are expected to be subdominant, it is nevertheless useful to determine the precise conditions under which these corrections become important. To address this question, we have carried out a second-order perturbative analysis of the tidal deformability of magnetised compact stars under a variety of magnetic-field strengths and equations of state describing either neutron stars or quark stars. Overall, we find that magnetically induced corrections to the tidal deformability will produce changes in the gravitational-wave phase evolution that are unlikely to be detected for realistic magnetic field i.e., . At the same time, if the magnetic field is unrealistically large, i.e., , these corrections would produce a sizeable contribution to the phase evolution, especially for quark stars. In the latter case, the induced phase differences would represent a unique tool to measure the properties of the magnetic fields, providing information that is otherwise hard to quantify.
21 pages, 6 figures
References in corpus (31)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- Tidal Love numbers of neutron stars
- Constraining neutron star tidal Love numbers with gravitational wave detectors
- Exploring the Sensitivity of Next Generation Gravitational Wave Detectors
- Constraining the Maximum Mass of Neutron Stars From Multi-Messenger Observations of GW170817
- Relativistic theory of tidal Love numbers
- An improved effective-one-body model of spinning, nonprecessing binary black holes for the era of gravitational-wave astrophysics with advanced detectors
- GW170817: Joint Constraint on the Neutron Star Equation of State from Multimessenger Observations
- Neutron-star radius constraints from GW170817 and future detections
- Model Waveform Accuracy Standards for Gravitational Wave Data Analysis
- Post-1-Newtonian tidal effects in the gravitational waveform from binary inspirals
- Dynamical Tides in General Relativity: Effective Action and Effective-One-Body Hamiltonian
- Spectral properties of the post-merger gravitational-wave signal from binary neutron stars
- Postmerger Gravitational-Wave Signatures of Phase Transitions in Binary Mergers
- A General-relativistic Determination of the Threshold Mass to Prompt Collapse in Binary Neutron Star Mergers
- Consistent neutron star models with magnetic field dependent equations of state
- Can magnetic fields be detected during the inspiral of binary neutron stars?
- Relativistic models of magnetars: structure and deformations
- Hydromagnetic Instabilities in Neutron Stars
- Variability from Nonaxisymmetric Fluctuations Interacting with Standing Shocks in Tilted Black Hole Accretion Disks
- Relativistic stars with purely toroidal magnetic fields
- Nonlinear-in-spin effects in effective-one-body waveform models of spin-aligned, inspiralling, neutron star binaries
- Gravitomagnetic response of an irrotational body to an applied tidal field
- Gravitomagnetic tidal resonance in neutron-star binary inspirals
- Tidal deformations of neutron stars with elastic crusts
- Comparing Effective One Body Hamiltonians for spin-aligned coalescing binaries
- Gravitomagnetic Love tensor of a slowly rotating body: post-Newtonian theory
- Excitation of f-modes during mergers of spinning binary neutron star
- Tidal deformations of hybrid stars with sharp phase transitions and elastic crusts
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- Equation of state of nuclear matter and neutron stars: Quark mean-field model versus relativistic mean-field model
- Premerger phenomena in neutron-star binary coalescences
- I-Love-Q in Hořava-Lifshitz Gravity
- Cosmological Constraints on 4D Einstein-Gauss-Bonnet Gravity and Kaniadakis Holographic Dark Energy: Implications for Black Hole Shadows
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