Reaction cross section described by a black sphere approximation of nuclei
Abstract
We identify a length scale that simultaneously accounts for the observed proton-nucleus reaction cross section and diffraction peak in the proton elastic differential cross section. This scale is the nuclear radius, , deduced from proton elastic scattering data of incident energies higher than MeV, by assuming that the target nucleus is a ``black'' sphere. The values of are determined so as to reproduce the angle of the first diffraction maximum in the scattering data for stable nuclei. We find that the absorption cross section, , agrees with the empirical total reaction cross section for C, Sn, and Pb to within error bars. This agreement persists in the case of the interaction cross section measured for a carbon target. We also find that systematically deviates from the empirically deduced values of the root-mean-square matter radius for nuclei having mass less than about 50, while it almost completely agrees with the deduced values for . This tendency suggests a significant change of the nuclear matter distribution from a rectangular one for , which is consistent with the behavior of the empirical charge distribution.
Cite
@article{arxiv.nucl-th/0410032,
title = {Reaction cross section described by a black sphere approximation of nuclei},
author = {Akihisa Kohama and Kei Iida and Kazuhiro Oyamatsu},
journal= {arXiv preprint arXiv:nucl-th/0410032},
year = {2009}
}
Comments
5 pages, 4 figures. 1 table, 2 paragraphs, and some references were added