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arXiv · 1505.07828

Thermodynamics of asymptotically safe theories

Abstract

We investigate the thermodynamic properties of a novel class of gauge-Yukawa theories that have recently been shown to be completely asymptotically safe, because their short-distance behaviour is determined by the presence of an interacting fixed point. Not only do all the coupling constants freeze at a constant and calculable value in the ultraviolet, their values can even be made arbitrarily small for an appropriate choice of the ratio $N_c/N_f$ of fermion colours and flavours in the Veneziano limit. Thus, a perturbative treatment can be justified. We compute the pressure, entropy density, and thermal degrees of freedom of these theories to next-to-next-to-leading order in the coupling constants.

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Dirk H. Rischke, Francesco Sannino. 2015-05-28. Thermodynamics of asymptotically safe theories. https://doi.org/10.1103/physrevd.92.065014

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