Elastic proton scattering off non-zero spin nuclei
Abstract
In recent years, we constructed a microscopic optical potential (OP) for elastic nucleon-nucleus () scattering using modern approaches based on chiral theories for the nucleon-nucleon () interaction. The OP was derived at first order of the spectator expansion in Watson multiple scattering theory and its final expression was a folding integral between the matrix and the nuclear density of the target. Two- and three-body forces are consistently included both in the target and in the projectile description. The purpose of this work is to apply our microscopic OP to nuclei characterized by a ground state of spin-parity quantum numbers . We extended our formalism to include the spin of the target nucleus. The full amplitudes of the reaction matrix are retained in the calculations starting from two- and three-body chiral forces. We show a remarkable agreement with experimental data for the available observables and, simultaneously, provide reliable estimates for the theoretical uncertainties. This work paves the way toward a full microscopic approach to inelastic scattering, showing that the derivation of optical potentials between states with is completely under control.
Cite
@article{arxiv.2110.05455,
title = {Elastic proton scattering off non-zero spin nuclei},
author = {Matteo Vorabbi and Michael Gennari and Paolo Finelli and Carlotta Giusti and Petr Navrátil and Ruprecht Machleidt},
journal= {arXiv preprint arXiv:2110.05455},
year = {2022}
}