English

Alpha-particle condensation: a nuclear quantum phase transition

Nuclear Theory 2020-07-15 v1

Abstract

When the density of a nuclear system is decreased, homogeneous states undergo the so-called Mott transition towards clusterised states, e.g. alpha clustering, both in nuclei and in nuclear matter. Here we investigate such a quantum phase transition (QPT) by using microscopic energy density functional (EDF) calculations both with the relativistic and the Gogny approaches on the diluted 16^{16}O nucleus. The evolution of the corresponding single-particle spectrum under dilution is studied, and a Mott-like transition is predicted at about 1/3 of the saturation density. Complementary approaches are used in order to understand this QPT. A study of spatial localisation properties as a function of the density allows to derive a value of the Mott density in agreement with the one obtained by fully microscopic calculations in 16^{16}O and in nuclear matter. Moreover a study of the spontaneous symmetry breaking of the rotational group in 16^{16}O, down to the discrete tetrahedral one, provides further insight on the features displayed by the single-particle spectrum obtained within the EDF approach.The content of the tetrahedrally deformed A-nucleon product state in terms of spherical particle-hole configurations is investigated. Finally a study of quartet condensation and the corresponding macroscopic QPT is undertaken in infinite matter.

Keywords

Cite

@article{arxiv.1912.07318,
  title  = {Alpha-particle condensation: a nuclear quantum phase transition},
  author = {J. -P. Ebran and M. Girod and E. Khan and R. D. Lasseri and P. Schuck},
  journal= {arXiv preprint arXiv:1912.07318},
  year   = {2020}
}

Comments

13 pages, 13 figures

R2 v1 2026-06-23T12:46:56.915Z