Configuration mixing in low-lying spectra of carbon hypernuclei
arXiv:1705.04904 · doi:10.1007/s11433-017-9048-2
Abstract
We perform a coupled-channels study of the low-lying states in C with a covariant energy density functional based microscopic particle-core coupling model. The energy differences of and states in C and C are predicted to be 0.25 MeV and 0.34 MeV, respectively. We find that configuration mixings in the and states of C are the weakest among those of C. It indicates that C provides the best candidate among the carbon hypernuclei to study the spin-orbit splitting of hyperon state.
5 pages with two figures and three tables, SCIENCE CHINA Physics, Mechanics & Astronomy, 2017
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