Relativistic hybrid stars with super-strong toroidal magnetic fields: An evolutionary track with QCD phase transition
arXiv:0910.0327 · doi:10.1111/j.1365-2966.2009.15813.x
Abstract
We investigate structures of hybrid stars, which feature quark core surrounded by a hadronic matter mantle, with super-strong toroidal magnetic fields in full general relativity. Modeling the equation of state (EOS) with a first order transition by bridging the MIT bag model for the description of quark matter and the nuclear EOS by Shen et al., we numerically construct thousands of the equilibrium configurations to study the effects of the phase transition. It is found that the appearance of the quark phase can affect distributions of the magnetic fields inside the hybrid stars, making the maximum field strength about up to 30 % larger than for the normal neutron stars. Using the equilibrium configurations, we explore the possible evolutionary paths to the formation of hybrid stars due to the spin-down of magnetized rotating neutron stars. We find that the energy release by the phase transition to the hybrid stars is quite large ($\la 10^{52} \rm erg$) even for super strongly magnetized compact stars. Our results suggest that the strong gravitational-wave emission and the sudden spin-up signature could be observable signals of the QCD phase transition, possibly for a source out to Megaparsec distances.
17 pages, 10 figures. accepted to MNRAS
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Cited by in corpus (12)
- Equilibrium models of relativistic stars with a toroidal magnetic field
- Signatures of hadron-quark mixed phase in gravitational waves
- Consistent neutron star models with magnetic field dependent equations of state
- Magnetohydrodynamic simulations of self-consistent rotating neutron stars with mixed poloidal and toroidal magnetic fields
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- Structure of ultra-magnetised neutron stars
- Exploring the effects of Delta Baryons in magnetars
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- Magnetized stars with differential rotation and a differential toroidal field
- General-relativistic resistive-magnetohydrodynamics simulations of self-consistent magnetized rotating neutron stars
- Methods for relativistic self-gravitating fluids: From binary neutron stars to black hole-disks and magnetized rotating neutron stars
- An Investigation into Surface Temperature Distributions of High-B Pulsars