Published June 1997 | Version v1
Journal article

Angular-momentum structure of the yrast bands of deformed nuclei

  • 1. Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831 (United States)
  • 2. Joint Institute for Heavy-Ion Research, Oak Ridge, Tennessee 37831 (United States)
  • 3. Department of Physics and Astronomy, University of Mississippi, University, Mississippi 38677 (United States)

Description

We have quantitatively analyzed the wave functions of the low-lying yrast states of deformed, heavy nuclei (specifically 238U and 168Er) given by different models to determine the relative contribution of the valence nucleons to the total angular momentum of the nucleus. In all models, an yrast state is generated, as expected, by collective contributions from both proton and neutron angular momenta. We have also examined the relative contribution of valence nucleons in the normal-parity states and in the abnormal-parity, high-j, intruder states to the yrast angular momentum. If the states with definite angular momenta projected from the Nilsson intrinsic state of the nucleus are assumed to provide a good approximation to the structure of the yrast band, the contribution of nucleons in the abnormal-parity states to the yrast angular momentum is shown to be about the same as that of nucleons in the normal-parity states. This result is in marked contrast to the assumption made in two prominent models (pseudo-SU3 model and its symplectic extension and fermion dynamic symmetric model) that the nucleons in abnormal-parity states, do not, in the first approximation, contribute any angular momentum to the yrast band. We also find that the distribution of angular momenta contained in the intrinsic state of the abnormal-parity nucleons in the jn configuration, which does not have any SU3 symmetry, is surprisingly similar to the distribution of angular momenta contained in an SU3 intrinsic state with the same average value of angular momentum. copyright 1997 The American Physical Society

Additional details

Publishing Information

Journal Title
Physical Review. C, Nuclear Physics
Journal Volume
55
Journal Issue
6
Journal Page Range
p. 2885-2908.
ISSN
0556-2813
CODEN
PRVCAN