Quantum thermodynamic Carnot and Otto-like cycles for a two-level system
Abstract
From the thermodynamic equilibrium properties of a two-level system with variable energy-level gap , and a careful distinction between the Gibbs relation and the energy balance equation , we infer some important aspects of the second law of thermodynamics and, contrary to a recent suggestion based on the analysis of an Otto-like thermodynamic cycle between two values of of a spin-1/2 system, we show that a quantum thermodynamic Carnot cycle, with the celebrated optimal efficiency , is possible in principle with no need of an infinite number of infinitesimal processes, provided we cycle smoothly over at least three (in general four) values of , and we change not only along the isoentropics, but also along the isotherms, e.g., by use of the recently suggested maser-laser tandem technique. We derive general bounds to the net-work to high-temperature-heat ratio for a Carnot cycle and for the 'inscribed' Otto-like cycle, and represent these cycles on useful thermodynamic diagrams.
Cite
@article{arxiv.quant-ph/0703261,
title = {Quantum thermodynamic Carnot and Otto-like cycles for a two-level system},
author = {Gian Paolo Beretta},
journal= {arXiv preprint arXiv:quant-ph/0703261},
year = {2014}
}
Comments
RevTex4, 4 pages, 1 figure