arXiv:2502.03875·v1·High Energy Physics — Lattice
Computation of the latent heat of the deconfinement phase transition of SU(3) Yang-Mills theory
Leonardo Giusti (Milan Bicocca U. and INFN, Milan Bicocca)🇮🇹 · Mitsuaki Hirasawa (Milan Bicocca U. and INFN, Milan Bicocca)🇮🇹 · Michele Pepe (INFN, Milan Bicocca)🇮🇹 · Luca Virzì (Milan Bicocca U. and INFN, Milan Bicocca)🇮🇹
Abstract
We investigate the thermal properties of Yang-Mills theory across the deconfinement phase transition considering the framework of shifted boundary conditions in the temporal direction. By measuring the entropy density on both sides of the phase transition at the critical temperature , we can retrieve the latent heat . Additionally, we compute from the discontinuity in the trace anomaly of the energy-momentum tensor. Simulations are performed at five different values of the lattice spacing, allowing us to extrapolate the results to the continuum limit. The two observables produce compatible results, giving the combined estimate in the continuum limit, achieving a precision of about 1 %. Moreover, we determine the critical temperature in physical units with permille accuracy, yielding . These results allow us to connect the confined and the deconfined phases with precision, and we present an improved computation of the Equation of State across the phase transition for temperatures between and .
Comments: 10 pages, 6 figures, Contribution to the The 41st International Symposium on Lattice Field Theory (LATTICE2024), 28 July - 3 August 2024, Liverpool, UK