A microscopic cluster model study of $^3$He+$p$ scatterings
Abstract
We calculate He+ scattering phase shifts in two different microscopic cluster models, Model T and Model C, in order to show the effects of tensor force as well as -wave components in the cluster wave function. Model T employs a realistic nucleon-nucleon potential and includes the -wave, whereas Model C employs an effective potential in which the tensor-force effect is considered to be renormalized into the central force and includes only the -wave for the cluster intrinsic motion. The - and -wave elastic scattering phase shifts are obtained in the \{He+\}+\{ + 2\} coupled-channels calculation. In Model T, the + 2 channel plays a significant role in producing the -wave resonant phase shifts but hardly affects the -wave non-resonant phase shifts. In Model C, however, the effect of the + 2 channel is suppressed in both of the - and -wave phase shifts, suggesting that it is renormalized mostly as the He(1/2)+ channel in the resonance region.
Cite
@article{arxiv.0812.4732,
title = {A microscopic cluster model study of $^3$He+$p$ scatterings},
author = {K. Arai and S. Aoyama and Y. Suzuki},
journal= {arXiv preprint arXiv:0812.4732},
year = {2014}
}
Comments
14page, 6 figures, submitted to PTP