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QCD-like theories at finite baryon density

  • University of Illinois at Urbana-Champaign
  • University of Illinois at Chicago
  • Brookhaven National Lab
  • Stony Brook University
  • University of British Columbia

Research output: Contribution to journalArticlepeer-review

336 Scopus citations

Abstract

We study QCD-like theories with pseudoreal fermions at finite baryon density. Such theories include two-color QCD with quarks in the fundamental representation of the color group as well as any-color QCD with quarks in the adjoint color representation. In all such theories the lightest baryons are diquarks. At zero chemical potential μ they are, together with the pseudoscalar mesons, the Goldstone modes of a spontaneously broken enlarged chiral symmetry group. Using symmetry principles, we derive the low-energy effective Lagrangian for these particles. We find that a second order phase transition occurs at a value of μ equal to half the mass of the Goldstone modes. For values of μ beyond this point the scalar diquarks Bose condense and the diquark condensate is nonzero. We calculate the dependence of the chiral condensate, the diquark condensate, the baryon charge density, and the masses of the diquark and pseudoscalar excitations on μ at finite bare quark mass and scalar diquark source. The relevance of our results to lattice QCD calculations and to real three-color QCD at finite baryon density is discussed.

Original languageEnglish
Pages (from-to)477-513
Number of pages37
JournalNuclear Physics, Section B
Volume582
Issue number1-3
DOIs
StatePublished - Aug 28 2000

Keywords

  • 11.30.Rd
  • 12.38.Lg
  • 12.39.Fe
  • 71.30.+h
  • Adjoint QCD
  • Chiral perturbation theory
  • Finite baryon density
  • Lattice QCD
  • Low-energy effective theory
  • QCD Dirac operator
  • QCD partition function
  • QCD with two colors

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