PaperPanorama

arXiv:2608.02649·v2·High Energy Physics — Lattice

Enthalpy-Based Thermal Response and Its Exact Relation to the Speed of Sound in Finite-Temperature QCD

S. D. Campos

PDFarXivINSPIRE

Abstract

A precise characterization of the QCD phase transition remains a fundamental open problem, primarily due to the intrinsically non-perturbative nature of the dynamics that govern the breakdown of We quantify the logarithmic thermal variation of the normalized enthalpy density in finite-temperature Quantum Chromodynamics using a dimensionless response thermal function, . We establish an exact identity that links to the speed of sound, . Using continuum-extrapolated lattice Quantum Chromodynamics, Monte Carlo uncertainty propagation, and cubic spline interpolation, we extract a stable peak at (), which remains robust under changes in the smoothing parameter . By contrast, for the MIT Bag Model despite its non-vanishing trace anomaly. We highlight as an effective diagnostic of the QCD crossover and discuss its limitations for universal critical scaling at zero chemical potential.

Comments: This paper has been completely rewritten