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Semi-classical evaporative cooling: classical and quantum distributions

2026/03/20 by A. A. Arvizu-Velazquez, A. del Río-Lima, S. Dondé-Rodríguez +1
#cond-mat.quant-gas #cond-mat.stat-mech

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Abstract

We develop a semiclassical thermodynamic framework for the evaporative cooling of trapped atomic gases that treats Maxwell--Boltzmann, Bose--Einstein, and Fermi--Dirac statistics on equal footing across box, harmonic, mixed, and linear-quadrupole potentials. Using the global thermodynamic variables of inhomogeneous confinement, we show that all geometries are unified by a single parameter s, which fixes the polylogarithm order, the density of states exponent, and the number of degrees of freedom 2s. Modeling evaporation as a recursive sequence of energy truncation and rethermalization, we derive closed-form recurrence relations for the particle number and internal energy that track the full thermodynamic state, with the classical energy budget set by a virial factor Ctrap = 1 + 3/(2s). Quantum degeneracy emerges not as a singularity in the global susceptibilities, but as a smooth, geometry-dependent crossover in which bosons and fermions display opposite thermodynamic signatures. The results provide a versatile theoretical tool for modeling evaporative cooling across experimentally relevant geometries and offer quantitative guidance for optimizing the cooling process in ultracold atomic systems.

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