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Thermalization in a Holographic Confining Gauge Theory

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arxiv 1503.07766 v3 pith:ABBXCGKM submitted 2015-03-26 hep-th gr-qchep-ph

Thermalization in a Holographic Confining Gauge Theory

classification hep-th gr-qchep-ph
keywords theorytimeboundaryconditionsconfiningdependentdualeinstein-dilaton
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Time dependent perturbations of states in the holographic dual of a 3+1 dimensional confining theory are considered. The perturbations are induced by varying the coupling to the theory's most relevant operator. The dual gravitational theory belongs to a class of Einstein-dilaton theories which exhibit a mass gap at zero temperature and a first order deconfining phase transition at finite temperature. The perturbation is realized in various thermal bulk solutions by specifying time dependent boundary conditions on the scalar, and we solve the fully backreacted Einstein-dilaton equations of motion subject to these boundary conditions. We compute the characteristic time scale of many thermalization processes, noting that in every case we examine, this time scale is determined by the imaginary part of the lowest lying quasi-normal mode of the final state black brane. We quantify the dependence of this final state on parameters of the quench, and construct a dynamical phase diagram. Further support for a universal scaling regime in the abrupt quench limit is provided.

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    Exact diagonalization shows 1+1D SU(2) lattice gauge theory with dynamical fermions satisfies ETH, including for non-local string operators that display a memory peak.