In the soft-wall holographic composite Higgs model, the symmetry breaking transition is strongly first order with alpha up to 10^3 and beta/H between 10^5 and 5x10^6, producing gravitational waves peaked near the BBO/DECIGO band.
Holographic QCD phase diagram for a rotating plasma in the Hawking-Page approach
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abstract
We investigate the combined effect of rotation and finite chemical potential in the confinement/deconfinement transition of strongly interacting matter. The holographic description consists of a five-dimensional geometry that contains a black hole (BH) in the deconfined (plasma) phase. The geometry is equipped with some cut-off that introduces an infrared energy scale. We consider two possibilities: the so-called hard wall and soft wall AdS/QCD models. The transition between the plasma and hadronic phases is represented holographically as a Hawking-Page transition between geometries with and without a black hole. The gravitational dual of the rotating plasma at finite density is given by a Reissner-Nordstr\"om (RN) charged anti-de Sitter (AdS) BH with non-zero angular momentum. This analysis provides the critical temperature of deconfinement as a function of the quark chemical potential and the plasma rotational velocity. For the case of very low temperatures, the dependence of the critical values of the chemical potential for the transition to occur at $ T \to 0 $ on the rotation is found.
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Holographic composite Higgs model and gravitational waves produced during first order phase transition
In the soft-wall holographic composite Higgs model, the symmetry breaking transition is strongly first order with alpha up to 10^3 and beta/H between 10^5 and 5x10^6, producing gravitational waves peaked near the BBO/DECIGO band.