Protoneutron star dynamos: pulsars, magnetars, and radio-silent X-ray emitting neutron stars
arXiv:astro-ph/0603034 · doi:10.1051/0004-6361:20054473
Abstract
We discuss the mean-field dynamo action in protoneutron stars that are subject to instabilities during the early evolutionary phase. The mean field is generated in the neutron-finger unstable region where the Rossby number is and mean-field dynamo is efficient. Depending on the rotation rate, the mean-field dynamo can lead to the formation of three different types of pulsars. If the initial period of the protoneutron star is short, then the generated large-scale field is very strong (G) and exceeds the small-scale field at the neutron star surface. If rotation is moderate, then the pulsars are formed with more or less standard dipole fields (G) but with surface small-scale magnetic fields stronger than the dipole field. If rotation is very slow, then the mean-field dynamo does not operate, and the neutron star has no global field. Nevertheless, strong small-scale fields are generated in such pulsars, and they can manifest themselves as objects with very low spin-down rate but with a strong magnetic field inferred from the spectral features.
4 pages, 2 figures, to appear on A&A
Cited by in corpus (10)
- On non-axisymmetric magnetic equilibria in stars
- Discovery of a 112 ms X-ray Pulsar in Puppis A: Further Evidence of Neutron Stars Weakly Magnetized at Birth
- Precise Timing of the X-ray Pulsar 1E 1207.4-5209: A Steady Neutron Star Weakly Magnetized at Birth
- X-ray Timing of PSR J1852+0040 in Kesteven 79: Evidence of Neutron Stars Weakly Magnetized at Birth
- Intermittency and Lifetime of the 625 Hz QPO in the 2004 Hyperflare from the Magnetar SGR 1806-20 as evidence for magnetic coupling between the crust and the core
- Magnetic field amplification in proto-neutron stars -- The role of the neutron-finger instability for dynamo excitation
- Joule heating in high magnetic field pulsars
- On the spin-down mechanism of the X-ray pulsar 4U 2206+54
- Kick velocity induced by magnetic dipole and quadrupole radiation
- IGR J17480-2446: a new class of accreting binaries?