Outer crust of a cold non-accreting magnetar
arXiv:1505.07304 · doi:10.1103/PhysRevC.92.035802
Abstract
The outer crust structure and composition of a cold, non-accreting magnetar is studied. We model the outer crust to be made of fully equilibrated matter where ionized nuclei form a Coulomb crystal embedded in an electron gas. The main effects of the strong magnetic field are those of quantizing the electron motion in Landau levels and of modifying the nuclear single particle levels producing, on average, an increased binding of nucleons in nuclei present in the Coulomb lattice. The effect of an homogeneous and constant magnetic field on nuclear masses has been predicted by using a covariant density functional, in which induced currents and axial deformation due to the presence of a magnetic field that breaks time-reversal symmetry have been included self-consistently in the nucleon and meson equations of motion. Although not yet observed, for G both effects contribute to produce different compositions and to enlarge the range of pressures typically present in common neutron stars. Specifically, in such a regime, the magnetic field effects on nuclei favor the appearance of heavier nuclei at low pressures. As increases, such heavier nuclei are also preferred up to larger pressures. In the most extreme case, the whole outer crust is almost made of Zr.
Published version
References in corpus (5)
- The strongest cosmic magnets: Soft Gamma-ray Repeaters and Anomalous X-ray Pulsars
- Global performance of covariant energy density functionals: ground state observables of even-even nuclei and the estimate of theoretical uncertainties
- Inner crust of neutron stars with mass-fitted Skyrme functionals
- Impact of the symmetry energy on the outer crust of non-accreting neutron stars
- Neutron drip transition in accreting and nonaccreting neutron star crusts
Cited by in corpus (12)
- Phases of dense matter in compact stars
- Superfluidity and Superconductivity in Neutron Stars
- Crust-core transition of a neutron star: effects of the symmetry energy and temperature under strong magnetic fields
- A new insight into neutrino energy loss by electron capture of iron group nuclei in magnetars surface
- Carbon-oxygen-neon mass nuclei in superstrong magnetic fields
- Role of the symmetry energy on the neutron-drip transition in accreting and nonaccreting neutron stars
- Role of Landau-Rabi quantization of electron motion on the crust of magnetars within the nuclear energy density functional theory
- Magnetised neutron star crust within effective relativistic mean-field model
- Landau quantization and neutron emissions by nuclei in the crust of a magnetar
- Analytical determination of the structure of the outer crust of a cold nonaccreted neutron star: extension to strongly quantizing magnetic fields
- Skyrme-based extrapolation for the static response of neutron matter
- Phase transitions in the inner crust of neutron stars within the superfluid band theory: Competition between pairing and spin polarization under finite temperature and magnetic field