Tensor Forces and the Ground-State Structure of Nuclei
Abstract
Two-nucleon momentum distributions are calculated for the ground states of nuclei with mass number , using variational Monte Carlo wave functions derived from a realistic Hamiltonian with two- and three-nucleon potentials. The momentum distribution of pairs is found to be much larger than that of pairs for values of the relative momentum in the range (300--600) MeV/c and vanishing total momentum. This order of magnitude difference is seen in all nuclei considered and has a universal character originating from the tensor components present in any realistic nucleon-nucleon potential. The correlations induced by the tensor force strongly influence the structure of pairs, which are predominantly in deuteron-like states, while they are ineffective for pairs, which are mostly in S states. These features should be easily observable in two-nucleon knock-out processes, such as and .
Keywords
Cite
@article{arxiv.nucl-th/0611037,
title = {Tensor Forces and the Ground-State Structure of Nuclei},
author = {R. Schiavilla and R. B. Wiringa and Steven C. Pieper and J. Carlson},
journal= {arXiv preprint arXiv:nucl-th/0611037},
year = {2008}
}
Comments
4 pages including 3 figures