Crystallography of color superconductivity
- 10 September 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 66 (6) , 065002
- https://doi.org/10.1103/physrevd.66.065002
Abstract
We develop the Ginzburg-Landau approach to comparing different possible crystal structures for the crystalline color superconducting phase of QCD, the QCD incarnation of the Larkin-Ovchinnikov-Fulde-Ferrell phase. In this phase, quarks of different flavor with differing Fermi momenta form Cooper pairs with nonzero total momentum, yielding a condensate that varies in space like a sum of plane waves. We work at zero temperature, as is relevant for compact star physics. The Ginzburg-Landau approach predicts a strong first-order phase transition (as a function of the chemical potential difference between quarks) and for this reason is not under quantitative control. Nevertheless, by organizing the comparison between different possible arrangements of plane waves (i.e., different crystal structures) it provides considerable qualitative insight into what makes a crystal structure favorable. Together, the qualitative insights and the quantitative, but not controlled, calculations make a compelling case that the favored pairing pattern yields a condensate which is a sum of eight plane waves forming a face-centered cubic structure. They also predict that the phase is quite robust, with gaps comparable in magnitude to the BCS gap that would form if the Fermi momenta were degenerate. These predictions may be tested in ultracold gases made of fermionic atoms. In a QCD context, our results lay the foundation for a calculation of vortex pinning in a crystalline color superconductor, and thus for the analysis of pulsar glitches that may originate within the core of a compact star.Keywords
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This publication has 52 references indexed in Scilit:
- Novel phases and transitions in color flavor locked matterPhysical Review D, 2002
- High-density quark matter under stressNuclear Physics A, 2002
- COLOR-SUPERCONDUCTING QUARK MATTERAnnual Review of Nuclear and Particle Science, 2001
- Unlocking color and flavor in superconducting strange quark matterNuclear Physics B, 1999
- Quark description of hadronic phasesPhysical Review D, 1999
- Color-flavor locking and chiral symmetry breaking in high density QCDNuclear Physics B, 1999
- Diquark Bose Condensates in High Density Matter and InstantonsPhysical Review Letters, 1998
- QCD at finite baryon density: nucleon droplets and color superconductivityPhysics Letters B, 1998
- Superfluidity and superconductivity in relativistic fermion systemsPhysics Reports, 1984
- Superconducting quark matterNuclear Physics B, 1977