Quantum Advantage of Thermal Machines with Bose and Fermi Gases

Entropy (Basel). 2023 Feb 17;25(2):372. doi: 10.3390/e25020372.

Abstract

In this article, we show that a quantum gas, a collection of massive, non-interacting, indistinguishable quantum particles, can be realized as a thermodynamic machine as an artifact of energy quantization and, hence, bears no classical analog. Such a thermodynamic machine depends on the statistics of the particles, the chemical potential, and the spatial dimension of the system. Our detailed analysis demonstrates the fundamental features of quantum Stirling cycles, from the viewpoint of particle statistics and system dimensions, that helps us to realize desired quantum heat engines and refrigerators by exploiting the role of quantum statistical mechanics. In particular, a clear distinction between the behavior of a Fermi gas and a Bose gas is observed in one dimension, rather than in higher dimensions, solely due to the innate differences in their particle statistics indicating the conspicuous role of a quantum thermodynamic signature in lower dimensions.

Keywords: Bose gas; Fermi gas; heat engine; quantum thermodynamics; refrigerator.

Grants and funding

This research was supported in part by the International Centre for Theoretical Sciences (ICTS) for participating in the program-Physics with Trapped Atoms, Molecules and Ions (code: ICTS/TAMIONs-2022/5) by A.G.