Quantifying corrections to the hadron resonance gas with lattice QCD
Abstract
The hadron resonance gas (HRG) model and its extensions are often used to describe the hadronic phase of strongly interacting matter. In our work we use lattice-QCD simulations with temporal extents of and to quantify corrections to the ideal HRG. Firstly, we determine a number of subleading fugacity expansion coefficients of the QCD free energy via a two-dimensional scan on the imaginary baryon number chemical potential () - strangeness chemical potential () plane. Using the aforementioned coefficients, we also extrapolate ratios of baryon number and strangeness fluctuations and correlations to finite chemical potentials via a truncated fugacity expansion. Our results extrapolated along the crossover line at strangeness neutrality are able to reproduce trends of experimental net-proton fluctuations measured by the STAR Collaboration.
Keywords
Cite
@article{arxiv.2112.02402,
title = {Quantifying corrections to the hadron resonance gas with lattice QCD},
author = {Rene Bellwied and Szabolcs Borsányi and Zoltán Fodor and Jana N. Guenther and Sándor D. Katz and Paolo Parotto and Attila Pásztor and Dávid Pesznyák and Claudia Ratti and Kálmán K. Szabó},
journal= {arXiv preprint arXiv:2112.02402},
year = {2021}
}
Comments
10 pages, 4 figures, Contribution to the 38th International Symposium on Lattice Field Theory, LATTICE2021 26th-30th July, 2021