Core-excitation effects in transfer reactions: Suppression or enhancement?
arXiv:1703.09289 · doi:10.1016/j.physletb.2017.03.069
Abstract
transfer reactions are described using momentum-space Faddeev-type equations for transition operators and including the vibrational excitation of the core. The available experimental cross section data at 10.5 MeV/nucleon beam energy for the ground state and excited state are quite well reproduced by our calculations including the core excitation. Its effect can be roughly simulated reducing the single-particle cross section by the corresponding spectroscopic factor. Consequently, the extraction of the spectroscopic factors taking the ratio of experimental data and single-particle cross section at this energy is a reasonable procedure. However, at higher energies core-excitation effects are much more complicated and have no simple relation to spectroscopic factors. We found that core-excitation effects are qualitatively very different for reactions with the orbital angular momentum transfer and , suppressing the cross sections for the former and enhancing for the latter, and changes the shape of the angular distribution in both cases. Furthermore, the core-excitation effect is a result of a complicated interplay between its contributions of the two- and three-body nature.
6+ pages, 6 figures, submitted to Phys. Lett. B
References in corpus (4)
Cited by in corpus (6)
- Deuteron-alpha scattering: separable vs nonseparable Faddeev approach
- Effects of an induced three-body force in the incident channel of (d,p) reactions
- Nonlocal optical potential with core excitation in and reactions
- Weak sensitivity of three-body () reactions to force models
- Core-excitation effects in three-body breakup reactions studied using the Faddeev formalism
- Three-body optical potentials in reactions and their influence on indirect study of stellar nucleosynthesis