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QCD with two colors at finite baryon density at next-to-leading order
Affiliation:1. NBI, Blegdamsvej 17, Copenhagen, Denmark;2. Physics Department, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA;3. Department of Physics and Astronomy, SUNY, Stony Brook, NY 11794, USA;1. Department of Mathematics, KU Leuven, Belgium;2. Department of Mathematics and Statistics, Dalhousie University, Halifax, Canada;1. Institut für Mathematik, Universität zu Lübeck, Germany;2. Department of Mathematics, University of Hawai’i at Mānoa, United States
Abstract:We study QCD with two colors and quarks in the fundamental representation at finite baryon density in the limit of light-quark masses. In this limit the free energy of this theory reduces to the free energy of a chiral Lagrangian which is based on the symmetries of the microscopic theory. In earlier work this Lagrangian was analyzed at the mean-field level and a phase transition to a phase of condensed diquarks was found at a chemical potential of half the diquark mass (which is equal to the pion mass). In this article we analyze this theory at next-to-leading order in chiral perturbation theory. We show that the theory is renormalizable and calculate the next-to-leading order free energy in both phases of the theory. By deriving a Landau–Ginzburg theory for the order parameter we show that the finite one-loop contribution and the next-to-leading order terms in the chiral Lagrangian do not qualitatively change the phase transition. In particular, the critical chemical potential is equal to half the next-to-leading order pion mass, and the phase transition is of second order.
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