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arXiv · 2511.01413

Systematics of the chemical freeze-out line in the high baryon density regime explored at SIS100

Abstract

The systematic uncertainties of chemical freeze-out fits at SIS100 energies (Au+Au reactions at $\sqrt{s_{NN}}=3-5$ GeV) are studied using UrQMD simulations. Although hadron production in UrQMD does not occur on a sharp chemical freeze-out hyper-surface, the extracted fit quality is shown to be very good. The extracted chemical parameters depend on the selected hadron species as well as the underlying equation of state (EoS) of the matter. Including light nuclei and anti-protons in the fit increases the expected freeze-out temperature, while a stiffer EoS increases the obtained chemical potential. Similarly, the baryon densities extracted by the thermal fits depend on the choice of hadrons as well as the underlying equation of state. These results are important for the upcoming CBM@FAIR physics program and highlight that a degree of caution is advised when one relates the chemical freeze-out curve to features on the QCD phase diagram like the critical endpoint or a possible phase transition.

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Emma Lilith Hofmann, Tom Reichert, Volodymyr Vovchenko, Jan Steinheimer, Marcus Bleicher. 2026-02-06. Systematics of the chemical freeze-out line in the high baryon density regime explored at SIS100. https://doi.org/10.1140/epjs%2Fs11734-026-02126-z

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