120 research outputs found

    Isospin Chemical Potential and the QCD Phase Diagram at Nonzero Temperature and Baryon Chemical Potential

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    We use the Nambu--Jona-Lasinio model to study the effects of the isospin chemical potential on the QCD phase diagram at nonzero temperature and baryon chemical potential. We find that the phase diagram is qualitatively altered by a small isospin chemical potential. There are two first order phase transitions that end in two critical endpoints, and there are two crossovers at low baryon chemical potential. These results have important consequences for systems where both baryon and isospin chemical potentials are nonzero, such as heavy ion collision experiments. Our results are in complete agreement with those recently obtained in a Random Matrix Model.Comment: 4 pages, 1 figure, REVTeX

    Lowest tensor-meson resonances contributions to the chiral perturbation theory low energy coupling constants

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    The contributions of the lightest tensor-meson resonances to the low-energy coupling constants of second order chiral perturbation theory with two flavours are evaluated and compared with the available phenomenological information as well as with similar results for other resonances

    Finite Density Lattice Gauge Theories with Positive Fermion Determinants

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    We perform simulations of (3-colour) QCD with 2 quark flavours at a finite chemical potential μI\mu_I for isospin(I3I_3), and of 2-colour QCD at a finite chemical potential μ\mu for quark number. At zero temperature, QCD at finite μI\mu_I has a mean-field phase transition at μI=mπ\mu_I=m_\pi to a superfluid state with a charged pion condensate which spontaneously breaks I3I_3. We study the finite temperature transition as a function of μI\mu_I. For μI<mπ\mu_I < m_\pi, where this is closely related to the transition at finite μ\mu, this appears to be a crossover independent of quark mass, with no sign of the proposed critical endpoint. For μI>mπ\mu_I > m_\pi this becomes a true phase transition where the pion condensate evaporates. For μI\mu_I just above mπm_\pi the transition seems to be second order, while for larger μI\mu_I it appears to become first order. At zero temperature, 2-colour QCD also possesses a superfluid state with a diquark condensate. We study its spectrum of Goldstone and pseudo-Goldstone bosons associated with chiral and quark-number symmetry breaking.Comment: 12 pages Latex/ptptex, 10 figures. Talk at Finite Density QCD, 2003, Nara Revised to add 2 reference

    The QCD Phase Diagram at Non-zero Baryon and Isospin Chemical Potentials

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    In heavy ion collision experiments as well as in neutron stars, both baryon and isospin chemical potentials are different from zero. In particular, the regime of small isospin chemical potential is phenomenologically important. Using a random matrix model, we find that the phase diagram at non-zero temperature and baryon chemical potential is greatly altered by an arbitrarily small isospin chemical potential: There are two first order phase transitions at low temperature, two critical endpoints, and two crossovers at high temperature. As a consequence, in the region of the phase diagram explored by RHIC experiments, there are two crossovers that separate the hadronic phase from the quark-gluon plasma phase at high temperature.Comment: 3 pages, 2 figures. Talk presented at Lattice2004(non-zero), Fermilab, June 21 - 26, 200

    Effective Low Energy Theories and QCD Dirac Spectra

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    We analyze the smallest Dirac eigenvalues by formulating an effective theory for the QCD Dirac spectrum. We find that in a domain where the kinetic term of the effective theory can be ignored, the Dirac eigenvalues are distributed according to a Random Matrix Theory with the global symmetries of the QCD partition function. The kinetic term provides information on the slope of the average spectral density of the Dirac operator. In the second half of this lecture we interpret quenched QCD Dirac spectra at nonzero chemical potential (with eigenvalues scattered in the complex plane) in terms of an effective low energy theory.Comment: Invited talk at the 10th International Conference on Recent Progress in Many-Body Theories (MBX), Seattle, September 1999, 13 pages, Latex, with 1 figure, uses ws-p9-75x6-50.cl

    Dirac Spectra and Real QCD at Nonzero Chemical Potential

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    We show that QCD Dirac spectra well below Lambda_{QCD}, both at zero and at nonzero chemical potential, can be obtained from a chiral Lagrangian. At nonzero chemical potential Goldstone bosons with nonzero baryon number condense beyond a critical value. Such superfluid phase transition is likely to occur in any system with a chemical potential with the quantum numbers of the Goldstone bosons. We discuss the phase diagram for one such system, QCD with two colors, and show the existence of a tricritical point in an effective potential approach.Comment: 26 pages, 8 Postscript figures, Invited talk at Symposium and Workshop "Continuous Advances in QCD 2002 / Arkadyfest", May 17-23, 200

    Quark-Antiquark Condensates in the Hadronic Phase

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    We use a hadron resonance gas model to calculate the quark-antiquark condensates for light (up and down) and strange quark flavors at finite temperatures and chemical potentials. At zero chemical potentials, we find that at the temperature where the light quark-antiquark condensates entirely vanish the strange quark-antiquark condensate still keeps a relatively large fraction of its value in the vacuum. This is in agreement with results obtained in lattice simulations and in chiral perturbation theory at finite temperature and zero chemical potentials. Furthermore, we find that this effect slowly disappears at larger baryon chemical potential. These results might have significant consequences for our understanding of QCD at finite temperatures and chemical potentials. Concretely, our results imply that there might be a domain of temperatures where chiral symmetry is restored for light quarks, but still broken for strange quark that persists at small chemical potentials. This might have practical consequences for heavy ion collision experiments.Comment: 5 pages, 7 figure
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