English

Spin-flip doublets of $^9$Be spectrum within a cluster model

Nuclear Theory 2017-06-26 v1

Abstract

The structure of the 9^9Be low-lying spectrum is studied within the cluster model α+α+n\alpha+\alpha+n. In the model the total orbital momentum is fixed for each energy level. Thus each level is determined as a member of the spin-flip doublet corresponding to the total orbital momentum (Lπ=0+,2+,4+,1,2,3,4L^\pi=0^+, 2^+,4^+, 1^-, 2^-,3^-, 4^-) of the system. The Ali-Bodmer potential (model E) is applied for the αα\alpha\alpha interaction. We employ a local αn\alpha n potential which was constructed to reproduce the αn\alpha-n scattering data. The Pauli blocking is simulated by the repulsive core of the ss-wave components of these potentials. Configuration space Faddeev equations are used to calculate the energy of the bound state (Ecal.E_{cal.}=-1.493 MeV v.s. Eexp.E_{exp.}=-1.5735 MeV) and resonances. A variant of the method of analytical continuation in the coupling constant is applied to calculate the energies of low-lying levels. Available 9^9Be spectral data are satisfactorily reproduced by the proposed model.

Keywords

Cite

@article{arxiv.1706.07481,
  title  = {Spin-flip doublets of $^9$Be spectrum within a cluster model},
  author = {I. Filikhin and V. M. Suslov and B. Vlahovic},
  journal= {arXiv preprint arXiv:1706.07481},
  year   = {2017}
}

Comments

17 pages, 5 figures

R2 v1 2026-06-22T20:27:11.067Z