English

Low-energy $^{6}$He scattering in a microscopic model

Nuclear Theory 2016-03-30 v1

Abstract

A microscopic version of the Continuum Discretized Coupled Channel (CDCC) method is used to investigate 6^{6}He scattering on 27^{27}Al, 58^{58}Ni, 120^{120}Sn, and 208^{208}Pb at energies around the Coulomb barrier. The 6^{6}He nucleus is described by an antisymmetric 6-nucleon wave function, defined in the Resonating Group Method. The 6^{6}He continuum is simulated by square-integrable positive-energy states. The model is based only on well known nucleon-target potentials, and is therefore does not depend on any adjustable parameter. I show that experimental elastic cross sections are fairly well reproduced. The calculation suggests that breakup effects increase for high target masses. For a light system such as 6^{6}He+27^{27}Al, breakup effects are small, and a single-channel approximation provides fair results. This property is explained by a very simple model, based on the sharp-cut-off approximation for the scattering matrix. I also investigate the 6^{6}He-target optical potentials, which confirm that breakup channels are more and more important when the mass increases. At large distances, polarization effects increase the Coulomb barrier, and provide a long-tail absorption component in the imaginary part of the nucleus-nucleus interaction.

Keywords

Cite

@article{arxiv.1603.01627,
  title  = {Low-energy $^{6}$He scattering in a microscopic model},
  author = {P. Descouvemont},
  journal= {arXiv preprint arXiv:1603.01627},
  year   = {2016}
}

Comments

11 pages, 11 figures, accepted at Phys. Rev. C

R2 v1 2026-06-22T13:04:13.998Z