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Order parameters for gauge invariant condensation far from equilibrium

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arxiv 2307.13669 v1 pith:NBNQ2F3L submitted 2023-07-25 hep-ph cond-mat.quant-gashep-latnucl-th

classification hep-phcond-mat.quant-gashep-latnucl-th
keywords gaugecondensationearlyordercollisionscondensatecorrelatordensity
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Nuclear collisions at sufficiently high energies are expected to produce far-from-equilibrium matter with a high density of gluons at early times. We show gauge condensation, which occurs as a consequence of the large density of gluons. To identify this condensation phenomenon, we construct two local gauge-invariant observables that carry the macroscopic zero mode of the gauge condensate. The first order parameter for gauge condensation investigated here is the correlator of the spatial Polyakov loop. We also consider, for the first time, the correlator of the gauge invariant scalar field, associated to the exponent of the Polyakov loop. Using real-time lattice simulations of classical-statistical $SU(2)$ gauge theory, we find gauge condensation on a system-size dependent time scale $t_{\text{cond}} \sim L^{1/\zeta}$ with a universal scaling exponent $\zeta$. Furthermore, we suggest an effective theory formulation describing the dynamics using one of the order parameters identified. The formation of a condensate at early times may have intriguing implications for the early stages in heavy ion collisions.

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Cited by 2 Pith papers

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  1. Understanding thermalization in a non-Abelian gauge theory in terms of its soft modes

    hep-lat 2025-01 conditional novelty 7.0 of 10

    Lyapunov exponents of soft SU(2) gluon modes give a thermalization time of about 0.5 fm/c at 600 MeV and a maximum of chaos at the deconfinement temperature.

  2. Revisiting the sphaleron and axion production rates in QCD at high temperatures

    hep-lat 2026-04 unverdicted novelty 6.0 of 10

    Lattice simulations give sphaleron rates in hot QCD plasmas and show axion production rates deviate from perturbative predictions at high temperatures.

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