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Photon Gas Thermodynamics with κκ-generalized statistics at Planck-Scale

Published 1 Sep 2026 in hep-ph | (2609.00606v1)

Abstract: Kaniadakis, or κκ-generalized, statistical mechanics provides a flexible framework for describing complex systems in the relativistic regime and predicts a richer phenomenology compared to its standard Maxwell-Boltzmann counterpart. In the present work, we extend the investigation of photon gas thermodynamics at the Planck scale within doubly special relativity to the framework of κκ-generalized statistical mechanics. By adopting the κκ-generalized statistical approach, we derive the principal thermodynamic quantities of a photon gas at the Planck scale, including the internal energy UU, Helmholtz free energy FF, pressure PP, entropy SS, and heat capacity CVC_{\rm V}. We find that these κκ-deformed thermodynamic quantities exhibit nontrivial dependence on the deformation parameter κκ. We then numerically evaluate these quantities as functions of temperature TT, and reveal that, as TT approaches the Planck scale, the κκ-deformed thermodynamic quantities are significantly suppressed relative to those in special relativity, while in the low-temperature regime they are enhanced and exceed their counterparts in special relativity, as a consequence of the κκ-generalized statistics.

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