Many-body forces in magnetic neutron stars
arXiv:1709.01017 · doi:10.3847/1538-4357/aa8b68
Abstract
In this work, we study in detail the effects of many-body forces on the equation of state and the structure of magnetic neutron stars. The stellar matter is described within a relativistic mean field formalism that takes into account many-body forces by means of a non-linear meson field dependence on the nuclear interaction coupling constants. We assume that matter is at zero temperature, charge neutral, in beta-equilibrium, and populated by the baryon octet, electrons, and muons. In order to study the effects of different degrees of stiffness in the equation of state, we explore the parameter space of the model, which reproduces nuclear matter properties at saturation, as well as massive neutron stars. Magnetic field effects are introduced both in the equation of state and in the macroscopic structure of stars by the self-consistent solution of the Einstein-Maxwell equations. In addition, effects of poloidal magnetic fields on the global properties of stars, as well as density and magnetic field profiles are investigated. We find that not only different macroscopic magnetic field distributions, but also different parameterizations of the model for a fixed magnetic field distribution impact the gravitational mass, deformation and internal density profiles of stars. Finally, we also show that strong magnetic fields affect significantly the particle populations of stars
accepted by The Astrophysical Journal
References in corpus (31)
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- Neutron-Rich Nuclei in Heaven and Earth
- Hyperon Puzzle: Hints from Quantum Monte Carlo Calculations
- Equation of State of a Dense and Magnetized Fermion System
- New Hyperon Equations of State for Supernovae and Neutron Stars in Density-dependent Hadron Field Theory
- Proto-Neutron and Neutron Stars in a Chiral SU(3) Model
- Hyperon mixing and universal many-body repulsion in neutron stars
- Consistent neutron star models with magnetic field dependent equations of state
- Tables of Hyperonic Matter Equation of State for Core-Collapse Supernovae
- Equation of State for Nucleonic and Hyperonic Neutron Stars with Mass and Radius Constraints
- Constraining hypernuclear density functional with -hypernuclei and compact stars
- Critical Density and Impact of Resonance Formation in Neutron Stars
- Hydromagnetic Instabilities in Neutron Stars
- Neutron stars with small radii -- the role of delta resonances
- (1232) effects in density-dependent relativistic Hartree-Fock theory and neutron stars
- Magnetar superconductivity versus magnetism: neutrino cooling processes
- Anisotropic Pressures in Very Dense Magnetized Matter
- Many-body forces in the equation of state of hyperonic matter
- Instability of Magnetic Equilibria in Barotropic Stars
- Neutron star deformation due to poloidal-toroidal magnetic fields of arbitrary multipole order: a new analytic approach
- Effects of meson self-coupling on the properties of finite nuclei and neutron stars
- On magnetic equilibria in barotropic stars
- Magnetized color flavor locked state and compact stars
- The internal composition of proto-neutron stars under strong magnetic fields
- Possibility of s-wave pion condensates in neutron stars revisited
- Hyperon star in a modified quark meson coupling model
- On the Density Dependent Nuclear Matter Compressibility
- Examination of strangeness instabilities and effects of strange meson couplings in dense strange hadronic matter and compact stars
- Effects of strong magnetic fields on the population of hyperon stars
- Magnetars as Highly Magnetized Quark Stars: an analytical treatment
Cited by in corpus (4)
- Limiting magnetic field for minimal deformation of a magnetised neutron star
- The dissipation of toroidal magnetic fields and spin-down evolution of young and strongly magnetized pulsars
- Could the low braking index pulsar PSR J1734-3333 evolve into a magnetar?
- Reinvestigation of the electron fraction and electron Fermi energy of neutron star