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Dirac spectrum and the BEC-BCS crossover in QCD at nonzero isospin asymmetry

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arxiv 1912.07451 v1 pith:ZAGBUPCP submitted 2019-12-16 hep-lat hep-phnucl-th

classification hep-lathep-phnucl-th
keywords phaseisospincrossoverdiracnonzerochargedchemicalcomplex
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

For large isospin asymmetries, perturbation theory predicts the QCD ground state to be a superfluid phase of $u$ and $\bar{d}$ Cooper pairs. This phase, which is denoted as the BCS phase, is expected to be smoothly connected to the standard phase with Bose-Einstein condensation (BEC) of charged pions at $\mu_I\ge m_\pi/2$ by an analytic crossover. A first hint for the existence of the BCS phase, which is likely characterised by the presence of both, deconfinement and charged pion condensation, is coming from the lattice observation that the deconfinement crossover smoothly penetrates into the BEC phase. To further scrutinize the existence of the BCS phase, in this proceedings article we investigate the complex spectrum of the massive Dirac operator in 2+1-flavor QCD at nonzero temperature and isospin chemical potential. The spectral density near the origin is related to the BCS gap via a generalization of the Banks-Casher relation to the case of complex Dirac eigenvalues (derived for the zero-temperature, high-density limits of QCD at nonzero isospin chemical potential).

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  1. Renormalization group invariant mean-field model for QCD at finite isospin density

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    A renormalization-group invariant mean-field quark-meson model with one fitted scale reproduces lattice QCD thermodynamics at finite isospin density and predicts a multicritical chiral/pion-condensation point in the c...

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