English

Effective holographic models for QCD: Thermodynamics and viscosity coefficients

High Energy Physics - Theory 2021-08-25 v3 General Relativity and Quantum Cosmology High Energy Physics - Lattice High Energy Physics - Phenomenology

Abstract

A finite temperature extension of the effective holographic models for QCD (EHQCD), proposed in Ref.[1], is investigated in the present work. EHQCD models are characterized by two parameters, the conformal dimension of the relevant operator that deforms the CFT and the associated coupling. We find that black hole solutions appear at temperatures higher than some temperature TminT_{min} and can be categorized in two classes: large and small black holes. A large black hole is thermally stable and it is therefore interpreted as the gravity dual of a non-conformal plasma. A small black hole, on the other hand, is thermally unstable. We show that thermodynamic quantities such as the entropy density ss, specific heat CVC_V, and speed of sound csc_s are sensitive to the model parameters. We investigate perturbations of the black hole solutions and calculate the viscosity coefficients of the corresponding dual non-conformal plasma. For the shear viscosity, we confirm that the ratio η/s\eta/s is given by the universal result 1/4π1/4\pi. For the bulk viscosity, the ratio ζ/s\zeta/s varies with the temperature, displaying a rapid growth close to TminT_{min}, and it is sensitive to the model parameters. We compare our results for the thermodynamic quantities with the lattice SU(NC)SU(N_C) results and find that they are compatible as long as the coupling is fixed appropriately as a function of the conformal dimension. We also compare our results for the viscosity coefficients against the JETSCAPE results that are obtained from the analysis of experimental data on heavy ion collisions.

Keywords

Cite

@article{arxiv.2103.14188,
  title  = {Effective holographic models for QCD: Thermodynamics and viscosity coefficients},
  author = {Alfonso Ballon-Bayona and Luis A. H. Mamani and Alex S. Miranda and Vilson T. Zanchin},
  journal= {arXiv preprint arXiv:2103.14188},
  year   = {2021}
}

Comments

39 pages, 13 figures , V3: Published in Physical Review D

R2 v1 2026-06-24T00:34:25.041Z