Thermodynamics of rotating fermions

Fuente: arXiv
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Main Authors: Ambrus, Victor E., Gecić, Aleksandar
Format: Preprint
Published: 2025
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author Ambrus, Victor E.
Gecić, Aleksandar
author_facet Ambrus, Victor E.
Gecić, Aleksandar
contents We consider the thermodynamic properties of a rotating gas of fermions. We begin by constructing the thermodynamic potential $Φ$ and its associated current $ϕ^μ$ within the grand canonical ensemble of a macroscopic rigidly rotating body, where the ensemble parameters are the temperature $T_0$ and chemical potential $μ_0$ on the rotation axis, as well as the rotation angular velocity $Ω_0$. We then consider the problem of local thermodynamics, where the thermodynamic state is defined by the local temperature $T$ and chemical potential $μ$, as well as the local spin potential tensor, $Ω_{μν}$. We find the thermodynamic pressure $P$, given as the sum of the usual classical (non-quantum) pressure and other corrections due to the spin potential and the kinematic state of the fluid. We compute the associated entropy, charge and spin densities, and show they are consistent with the Euler relation.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17640
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Thermodynamics of rotating fermions
Ambrus, Victor E.
Gecić, Aleksandar
High Energy Physics - Theory
Nuclear Theory
We consider the thermodynamic properties of a rotating gas of fermions. We begin by constructing the thermodynamic potential $Φ$ and its associated current $ϕ^μ$ within the grand canonical ensemble of a macroscopic rigidly rotating body, where the ensemble parameters are the temperature $T_0$ and chemical potential $μ_0$ on the rotation axis, as well as the rotation angular velocity $Ω_0$. We then consider the problem of local thermodynamics, where the thermodynamic state is defined by the local temperature $T$ and chemical potential $μ$, as well as the local spin potential tensor, $Ω_{μν}$. We find the thermodynamic pressure $P$, given as the sum of the usual classical (non-quantum) pressure and other corrections due to the spin potential and the kinematic state of the fluid. We compute the associated entropy, charge and spin densities, and show they are consistent with the Euler relation.
title Thermodynamics of rotating fermions
topic High Energy Physics - Theory
Nuclear Theory
url https://arxiv.org/abs/2509.17640