Photon Gas Thermodynamics with κ-generalized statistics at Planck-Scale
Xinyi Yang, Qi Xiong, Guifeng Su, Yi Zhang
Abstract
Kaniadakis, or κ-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 κ-generalized statistical mechanics. By adopting the κ-generalized statistical approach, we derive the principal thermodynamic quantities of a photon gas at the Planck scale, including the internal energy U, Helmholtz free energy F, pressure P, entropy S, and heat capacity C V. We find that these κ-deformed thermodynamic quantities exhibit nontrivial dependence on the deformation parameter κ. We then numerically evaluate these quantities as functions of temperature T, and reveal that, as T approaches the Planck scale, the κ-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 κ-generalized statistics.
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