Ambipolar diffusion in superfluid neutron stars
arXiv:1010.1153 · doi:10.1111/j.1365-2966.2011.18278.x
Abstract
In this paper we reconsider the problem of magnetic field diffusion in neutron star cores. We model the star as consisting of a mixture of neutrons, protons and electrons, and allow for particle reactions and binary collisions between species. Our analysis is in much the same spirit as that of Goldreich & Reisenegger (1992), and we content ourselves with rough estimates of magnetic diffusion timescales, rather than solving accurately for some particular field geometry. However, our work improves upon previous treatments in one crucial respect: we allow for superfluidity in the neutron star matter. We find that the consequent mutual friction force, coupling the neutrons and charged particles, together with the suppression of particles collisions and reactions, drastically affect the ambipolar magnetic field diffusion timescale. In particular, the addition of superfluidity means that it is unlikely that there is ambipolar diffusion in magnetar cores on the timescale of the lifetimes of these objects, contradicting an assumption often made in the modelling of the flaring activity commonly observed in magnetars. Our work suggests that if a decaying magnetic field is indeed the cause of magnetar activity, the field evolution is likely to take place outside of the core, and might represent Hall/Ohmic diffusion in the stellar crust, or else that a mechanism other than standard ambipolar diffusion is active, e.g. flux expulsion due to the interaction between neutron vortices and magnetic fluxtubes.
Paper changed to incorporate comments from referee. To appear in MNRAS
References in corpus (2)
Cited by in corpus (49)
- Magnetars
- Magnetars: the physics behind observations
- Unifying the observational diversity of isolated neutron stars via magneto-thermal evolution models
- Magnetars: Properties, Origin and Evolution
- Magnetar heating
- The outburst decay of the low magnetic field magnetar SGR 0418+5729
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Magnetic, thermal and rotational evolution of isolated neutron stars
- Magnetically-driven crustquakes in neutron stars
- Magnetars vs. high magnetic field pulsars: a theoretical interpretation of the apparent dichotomy
- Magnetars: super(ficially) hot and super(fluid) cool
- Reaction rates and transport in neutron stars
- Is SGR 0418+5729 indeed a waning magnetar ?
- Magnetic field growth in young glitching pulsars with a braking index
- Equilibrium spin pulsars unite neutron star populations
- Rotational evolution of young pulsars due to superfluid decoupling
- Magnetic field decay in neutron stars: from Soft Gamma Repeaters to "weak field magnetars"
- Magnetic-field evolution in a plastically-failing neutron-star crust
- Magnetic Field Evolution in Superconducting Neutron Stars
- Evidence for an abundant old population of Galactic ultra long period magnetars and implications for fast radio bursts
- The relevance of ambipolar diffusion for neutron star evolution
- Simulated magnetic field expulsion in neutron star cores
- Hydromagnetic equilibrium in non-barotropic multifluid neutron stars
- Magneto-thermal evolution of neutron stars with coupled Ohmic, Hall and ambipolar effects via accurate finite-volume simulations
- Magnetar field evolution and crustal plasticity
- Magnetic field evolution and equilibrium configurations in neutron star cores: the effect of ambipolar diffusion
- Evolution of the magnetic field in neutron stars
- Low-magnetic-field magnetars
- Fast magnetic field evolution in neutron stars: the key role of magnetically induced fluid motions in the core
- Magnetic field evolution timescales in superconducting neutron stars
- Two-fluid simulations of the magnetic field evolution in neutron star cores in the weak-coupling regime
- Relativistic finite temperature multifluid hydrodynamics in a neutron star from a variational principle
- The life cycle of magnetars: a novel approach to estimate their ages
- Chandra Phase-Resolved Spectroscopy of the High Magnetic Field Pulsar B1509-58
- Magnetothermal Evolution of Neutron Stars with Emphasis to Radio Pulsars
- Non-Axisymmetric Precession of Magnetars and Fast Radio Bursts
- Magneto-rotational neutron star evolution: the role of core vortex pinning
- Combined magnetic field evolution in neutron star cores and crusts: Ambipolar diffusion, Hall effect and Ohmic dissipation
- Dynamical onset of superconductivity and retention of magnetic fields in cooling neutron stars
- A systematic study of soft X-ray pulse profiles of magnetars in quiescence
- Magnetic-field evolution with large-scale velocity circulation in a neutron-star crust
- A note on the ambipolar diffusion in superfluid neutron stars
- Strongly magnetized pulsars: explosive events and evolution
- Magnetically supramassive neutron stars
- Evolution of magnetic deformation in neutron star crust
- On the connection between radiative outbursts and timing irregularities in magnetars
- Measuring the Non-Axially-Symmetric Surface Temperature Distribution of the Central Compact Object in Puppis A
- Diffusion in superfluid Fermi mixtures: General formalism
- Periodic Activities of Fast Radio Burst Repeaters from Precessing Magnetars with Evolving Obliquity