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Hot QCD: transport coefficients in strong and weak coupling regimes

Published 8 Sep 2026 in hep-ph | (2609.08521v1)

Abstract: We evaluate the transport coefficients, namely the shear viscosity ηη and the spatial diffusion coefficient of heavy quarks DsD_s, within a Quasi-Particle Model (QPM). In particular, for the first time this has been done by exploiting novel lQCD data at Nf=3+1N_f=3+1. In such a framework, in which the gluons are massive, the interactions among quarks and gluons have been evaluated via the scattering matrices evaluated from tree level Feynman diagrams. As far as the evaluation of DsD_s is concerned, the Fokker-Planck approximation for the relativistic Boltzmann equation has been employed for the diffusion of both charm and bottom quarks in either a Nf=3N_f=3 and a Nf=3+1N_f=3+1 bulk. We have developed a dual-component Chapman-Enskog formalism for the ratio η/sη/s (being ss the entropy density) of a mixture of quarks and gluons. The temperature dependence of the shear viscosity is then compared to the results from a Green-Kubo approach, based on the numerical resolution of the relativistic Boltzmann equation with a stochastic implementation of the collision integral. Finally, using the above results, we compare the strong and weak coupling regimes for the ratio (2πTDs)/(4πη/s)(2πT D_s)/(4πη/s).

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