2019/09/23 by Miranda, Enrique N.
#FOS: Physical sciences #General Physics (physics.gen-ph)
paper · doi:10.48550/arxiv.1909.12084
In the statistical mechanics of quantum harmonic oscillators, the zero-point energy can either be included (Schrödinger oscillators) or omitted (Planck oscillators). For the usual results, the type of oscillator makes no difference but, looking more closely, it turns out that including or not this energy is not without consequences. The chemical potential μs of a Schrödinger oscillator set is calculated in the canonical formalism and this shows there is a temperature T0 for which μs=0; below this temperature, μs>0. When Planck oscillators are used instead, the chemical potential μp is negative for all temperatures. If the problem is approached in phonon terms and the system is considered to be in contact with a reservoir of particles (conditions of the grand canonical ensemble), a sort of critical temperature Tc is found, for which the number of particles in the system diverges. For Schrödinger oscillators with μs=0, it turns out that Tc=T0, i.e. T0 is a reminder, in the canonical ensemble, of the divergent behavior in the number of particles when under the conditions of the grand canonical ensemble. Also, a modified Einstein solid (MES) model is introduced. In this model the frequency of the oscillators changes with the volume of the solid, and this change is characterized by a certain value of the Grüneisen parameter. The bulk modulus of this solid can be calculated using Planck oscillators, and it becomes negative for certain temperature and volume values, which is physically incorrect. When Schrödinger oscillators are used, the bulk modulus is always positive. Therefore, the different behavior of both types of oscillators would indicate that only Schrödinger oscillators lead to correct results.