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Cosmological Particle Production at Strong Coupling

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arxiv 1505.03901 v3 pith:6NLFIE6V submitted 2015-05-14 hep-th gr-qc

Cosmological Particle Production at Strong Coupling

classification hep-th gr-qc
keywords couplinginitialproductionstrongamplitudecosmologicaldynamicsexpansion
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the dynamics of a strongly-coupled quantum field theory in a cosmological spacetime using the holographic AdS/CFT correspondence. Specifically we consider a confining gauge theory in an expanding FRW universe and track the evolution of the stress-energy tensor during a period of expansion, varying the initial temperature as well as the rate and amplitude of the expansion. At strong coupling, particle production is inseparable from entropy production. As a result, we find significant qualitative differences from the weak coupling results: at strong coupling the system rapidly loses memory of its initial state as the amplitude is increased. Furthermore, in the regime where the Hubble parameter is parametrically smaller than the initial temperature, the dynamics is well modelled as a plasma evolving hydrodynamically towards equilibrium.

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    Holographic complexity of CFTs in global dS_d is computed via volume and action prescriptions in AdS foliation and brane setups, then compared to results from static and Poincare patches.