English

Continuum particle-vibration coupling method in coordinate-space representation for finite nuclei

Nuclear Theory 2012-09-19 v1

Abstract

In this paper we present a new formalism to implement the nuclear particle-vibration coupling (PVC) model. The key issue is the proper treatment of the continuum, that is allowed by the coordinate space representation. Our formalism, based on the use of zero-range interactions like the Skyrme forces, is microscopic and fully self-consistent. We apply it to the case of neutron single-particle states in 40^{40}Ca, 208^{208}Pb and 24^{24}O. The first two cases are meant to illustrate the comparison with the usual (i.e., discrete) PVC model. However, we stress that the present approach allows to calculate properly the effect of PVC on resonant states. We compare our results with those from experiments in which the particle transfer in the continuum region has been attempted. The latter case, namely 24^{24}O, is chosen as an example of a weakly-bound system. Such a nucleus, being double-magic and not displaying collective low-lying vibrational excitations, is characterized by quite pure neutron single-particle states around the Fermi surface.

Keywords

Cite

@article{arxiv.1205.0854,
  title  = {Continuum particle-vibration coupling method in coordinate-space representation for finite nuclei},
  author = {Kazuhito Mizuyama and Gianluca Colò and Enrico Vigezzi},
  journal= {arXiv preprint arXiv:1205.0854},
  year   = {2012}
}

Comments

29pages, 21figures, 8tables

R2 v1 2026-06-21T20:58:29.408Z