Quadrupole deformation $(\beta,\gamma)$ of light $\Lambda$ hypernuclei in constrained relativistic mean field model: shape evolution and shape polarization effect of $\Lambda$ hyperon
Abstract
The shapes of light normal nuclei and hypernuclei are investigated in the deformation plane by using a newly developed constrained relativistic mean field (RMF) model. As examples, the results of some C, Mg, and Si nuclei are presented and discussed in details. We found that for normal nuclei the present RMF calculations and previous Skyrme-Hartree-Fock models predict similar trends of the shape evolution with the neutron number increasing. But some quantitative aspects from these two approaches, such as the depth of the minimum and the softness in the direction, differ a lot for several nuclei. For hypernuclei, in most cases, the addition of a hyperon alters slightly the location of the ground state minimum towards the direction of smaller and softer in the potential energy surface . There are three exceptions, namely, C, C, and Si in which the polarization effect of the additional is so strong that the shapes of these three hypernuclei are drastically different from their corresponding core nuclei.
Cite
@article{arxiv.1104.4638,
title = {Quadrupole deformation $(\beta,\gamma)$ of light $\Lambda$ hypernuclei in constrained relativistic mean field model: shape evolution and shape polarization effect of $\Lambda$ hyperon},
author = {Bing-Nan Lu and En-Guang Zhao and Shan-Gui Zhou},
journal= {arXiv preprint arXiv:1104.4638},
year = {2015}
}
Comments
11 pages, 3 figures; added references and arguments in Sections III and IV; to be published in Phys. Rev. C