Fermion zero-mode influence on neutron-star magnetic field evolution
arXiv:0902.0478 · doi:10.1111/j.1365-2966.2009.15016.x
Abstract
The quantum phenomenon of spectral flow which has been observed in laboratory superfluids, such as 3He-B, controls the drift velocity of proton type II superconductor vortices in the liquid core of a neutron star and so determines the rate at which magnetic flux can be expelled from the core to the crust. In the earliest and most active phases of the anomalous X-ray pulsars and soft-gamma repeaters, the rates are low and consistent with a large fraction of the active crustal flux not linking the core. If normal neutrons are present in an appreciable core matter-density interval, the spectral flow force limits flux expulsion in cases of rapid spin-down, such as in the Crab pulsar or in the propeller phase of binary systems.
Additional references and extended explanation: to be published in Monthly Notices of the Royal Astronomical Society
References in corpus (13)
- Big-Bang nucleosynthesis (Particle Data Group mini-review)
- The Cosmological Parameters 2006
- Neutron Star Cooling
- Physics of Strongly Magnetized Neutron Stars
- Pairing in nuclear systems: from neutron stars to finite nuclei
- Evidence for Heating of Neutron Stars by Magnetic Field Decay
- Neutron Stars as Type-I Superconductors
- Type-I superconductivity and neutron star precession
- Flux tubes and the type-I/type-II transition in a superconductor coupled to a superfluid
- Type II superconductivity and magnetic flux transport in neutrons stars
- Phase Transitions in Nucleonic Matter and Neutron-Star Cooling
- A Novel Mechanism for Type-I Superconductivity in Neutron Stars
- Isospin asymmetry and type-I superconductivity in neutron star matter
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- Vortex buoyancy in superfluid and superconducting neutron stars
- Color-magnetic flux tubes in quark matter cores of neutron stars
- Force on proton vortices in superfluid neutron stars
- Microscopic description of axisymmetric vortices in superfluids
- Kopnin force and chiral anomaly
- Proton superconductivity in pasta phases in neutron star crusts