Color-magnetic flux tubes in quark matter cores of neutron stars
arXiv:1001.3346 · doi:10.1088/0954-3899/37/7/075202
Abstract
We argue that if color-superconducting quark matter exists in the core of a neutron star, it may contain a high density of flux tubes, carrying flux that is mostly color-magnetic, with a small admixture of ordinary magnetic flux. We focus on the two-flavor color-superconducting ("2SC") phase, and assume that the flux tubes are energetically stable, although this has not yet been demonstrated. The density of flux tubes depends on the nature of the transition to the color-superconducting phase, and could be within an order of magnitude of the density of magnetic flux tubes that would be found if the core were superconducting nuclear matter. We calculate the cross-section for Aharonov-Bohm scattering of gapless fermions off the flux tubes, and the associated collision time and frictional force on a moving flux tube. We discuss the other forces on the flux tube, and find that if we take in to account only the forces that arise within the 2SC core region then the timescale for expulsion of the color flux tubes from the 2SC core is of order 10^10 years.
28 pages, LaTeX, 1 figure, 2 appendices; added discussion of energetic stability of flux tubes
References in corpus (12)
- Color superconductivity in dense quark matter
- Quark matter under strong magnetic fields in the Nambu--Jona-Lasinio Model
- Anisotropic Hydrodynamics, Bulk Viscosities and R-Modes of Strange Quark Stars with Strong Magnetic Fields
- Color-Superconducting Gap in the Presence of a Magnetic Field
- Color superconducting matter in a magnetic field
- Color Magnetic Flux Tubes in Dense QCD. II: Effective World-Sheet Theory
- Electron thermal conductivity owing to collisions between degenerate electrons
- Flux tubes and the type-I/type-II transition in a superconductor coupled to a superfluid
- A Novel Mechanism for Type-I Superconductivity in Neutron Stars
- Tkachenko modes as sources of quasiperiodic pulsar spin variations
- Non-Abelian Global Vortices
- Vortex structure of a neutron star with CFL quark core
Cited by in corpus (27)
- Superfluidity in nuclear systems and neutron stars
- Vortices and Other Topological Solitons in Dense Quark Matter
- Color neutral 2SC phase of cold and dense quark matter in the presence of constant magnetic fields
- Quark-hadron continuity beyond Ginzburg-Landau paradigm
- Cooper Pair's Magnetic Moment in MCFL Color Superconductivity
- Relativistic dynamics of superfluid-superconducting mixtures in the presence of topological defects and an electromagnetic field with application to neutron stars
- Strange quark matter in strong magnetic fields within a confining model
- Transport coefficients of two-flavor superconducting quark matter
- Magnetized color flavor locked state and compact stars
- Critical magnetic fields in a superconductor coupled to a superfluid
- Gravitational waves from color-magnetic `mountains' in neutron stars
- Rotating hybrid compact stars
- Force on proton vortices in superfluid neutron stars
- Aharonov-Bohm Phase in High Density Quark Matter
- Magnetized color superconducting quark matter under compact star conditions: Phase structure within the SU(2)f NJL model
- Non-Abelian Alice strings in two-flavor dense QCD
- Chiral symmetry breaking, color superconductivity, and the equation of state for magnetized strange quark matter
- Effect of temperature and magnetic field on two-flavor superconducting quark matter
- Topological confinement of vortices in two-flavor dense QCD
- Kopnin force and chiral anomaly
- Aharonov-Bohm defects
- Rapid rotational crust-core relaxation in magnetars
- Exploring phases of dense QCD with compact stars
- Mixing of charged and neutral Bose condensates at nonzero temperature and magnetic field
- Stable non-Abelian semi-superfluid vortices in dense QCD
- Magnetic coupling through flux branching of adjacent type-I and -II superconductors in a neutron star
- Flux tube clustering from magnetic coupling of adjacent type-I and -II superconductors in a neutron star: persistent gravitational radiation