Deformation and cluster structures in $^{12}$C studied with configuration mixing using Skyrme interactions
Abstract
We report an investigation of the structure of C nucleus employing a newly developed configuration-mixing method. In the three-dimensional coordinate-space representation, we generate a number of Slater determinants with various correlated structures using the imaginary-time algorithm. We then diagonalize a many-body Hamiltonian with the Skyrme interaction in the space spanned by the Slater determinants with parity and angular momentum projections. Our calculation reasonably describes the ground and excited states of C nucleus, both for shell-model-like and cluster-like states. The excitation energies and transition strengths of the ground-state rotational band are well reproduced. Negative parity excited states, , , and , are also reasonably described. The second and third states, and , appear at around 8.8 MeV and 15 MeV, respectively. The state shows a structure consistent with former results of the \alpha-cluster models, however, the calculated radius of the state is smaller than those calculations. The three-{\alpha} linear-chain configuration dominates in the state.
Keywords
Cite
@article{arxiv.1304.5927,
title = {Deformation and cluster structures in $^{12}$C studied with configuration mixing using Skyrme interactions},
author = {Y. Fukuoka and S. Shinohara and Y. Funaki and T. Nakatsukasa and K. Yabana},
journal= {arXiv preprint arXiv:1304.5927},
year = {2013}
}
Comments
15 pages, 13 figures