arXiv:2604.03709·v2·High Energy Physics — Phenomenology
Multiplicity dependence of thermal parameters in pp collisions at TeV from statistical hadronization fits
Abstract
We perform a systematic thermal analysis of identified hadron yields measured by the ALICE Collaboration in proton-proton collisions at TeV across charged-particle multiplicity classes within the statistical hadronization model using the Thermal-FIST framework. Global fits are used to extract the chemical freeze-out temperature , system volume , and strangeness saturation parameter . The extracted temperature remains approximately constant at - MeV across multiplicity, while the effective volume exhibits an approximately linear increase with event activity. In contrast, shows a clear rise with multiplicity, indicating a progressive reduction of strangeness suppression. Derived thermodynamic quantities obtained within the model show that the energy density increases with multiplicity, while the average energy per particle increases from GeV to GeV, remaining close to GeV. Particle-to-pion ratios reproduce the strangeness-dependent hierarchy observed by ALICE. A systematic comparison of fits constrained by hidden- and open-strangeness hadrons reveals a persistent offset in , corresponding to an approximately separation between the - and -constrained results within the present quadrature-summed uncertainty treatment. These results indicate that, although high-multiplicity proton-proton collisions exhibit several features compatible with an approximate thermal description, a single global freeze-out parameterization does not fully capture the strange sector.
Comments: 11 pages, 4 figures