English

Dimensional crossover of a boson gas in multilayers

Quantum Gases 2015-05-19 v1

Abstract

We obtain the thermodynamic properties for a non-interacting Bose gas constrained on multilayers modeled by a periodic Kronig-Penney delta potential in one direction and allowed to be free in the other two directions. We report Bose-Einstein condensation (BEC) critical temperatures, chemical potential, internal energy, specific heat, and entropy for different values of a dimensionless impenetrability P0P\geqslant 0 between layers. The BEC critical temperature TcT_{c} coincides with the ideal gas BEC critical temperature T0T_{0} when P=0P=0 and rapidly goes to zero as PP increases to infinity for any finite interlayer separation. The specific heat CVC_{V} \textit{vs} TT for finite PP and plane separation aa exhibits one minimum and one or two maxima in addition to the BEC, for temperatures larger than TcT_{c} which highlights the effects due to particle confinement. Then we discuss a distinctive dimensional crossover of the system through the specific heat behavior driven by the magnitude of PP. For T<TcT<T_{c} the crossover is revealed by the change in the slope of logCV(T)\log C_{V}(T) and when T>TcT>T_{c}, it is evidenced by a broad minimum in CV(T)C_{V}(T).

Keywords

Cite

@article{arxiv.1007.1458,
  title  = {Dimensional crossover of a boson gas in multilayers},
  author = {P. Salas and F. J. Sevilla and M. Fortes and M. de Llano and A. Camacho and M. A. Solís},
  journal= {arXiv preprint arXiv:1007.1458},
  year   = {2015}
}

Comments

Ten pages, nine figures

R2 v1 2026-06-21T15:46:09.237Z