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April 20, 20260 citationsOpen Access

Effects of q-Deformation on the Thermal Deconfinement Phase Transition in High-Energy Physics

LGLebba GhenamKBK. Bouakaz

Key Points

  • This research investigates how q-deformation affects the thermal deconfinement phase transition from hadronic gas to quark-gluon plasma.
  • Used analytical derivations and numerical simulations
  • Applied phase coexistence model
  • Analyzed thermodynamic parameters like specific heat and entropy
  • Increase in q-deformation decreases critical transition temperature
  • Enhanced thermodynamic quantities like entropy and energy density
  • Phase transition displays first-order characteristics with latent heat
  • Finite-size effects lead to smoothed transitions in smaller volumes

Abstract

The influence of the ????-deformation parameter on the thermal deconfinement phase transition (DPT) from a hadronic gas phase to a Quark-Gluon Plasma (QGP) phase is investigated in this paper using analytical derivations and numerical simulations within the phase coexistence model. By studying key thermodynamic parameters such as specific heat, entropy, energy density, and the order parameter, we demonstrate how the phase transition dynamics are modified by the deformation parameter ????. Our results indicate that increasing ???? lowers the critical transition temperature ????????(????), while enhancing thermodynamic quantities like entropy and energy densities. Furthermore, the phase transition exhibits first-order characteristics, as evidenced by latent heat and discontinuities in thermodynamic functions near the critical point. Additionally, we study finite-size effects, which result in smoothed transitions in smaller system volumes. These findings underscore the relevance of ????-deformation in high-energy physics, particularly in understanding the thermodynamics of QCD phase transitions and non-extensive statistical contributions.

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Cite This Study

Ghenam et al. (2025) studied this question.

synapsesocial.com/papers/69e5c30b03c2939914028e66https://doi.org/10.57647/jtap.2026.2004.01
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