TY - JOUR
T1 - Rotational motion of triaxially deformed nuclei studied by the microscopic angular-momentum-projection method. I. Nuclear wobbling motion
AU - Shimada, Mitsuhiro
AU - Fujioka, Yudai
AU - Tagami, Shingo
AU - Shimizu, Yoshifumi R.
N1 - Publisher Copyright:
© 2018 American Physical Society.
PY - 2018/2/16
Y1 - 2018/2/16
N2 - Rotation of triaxially deformed nucleus has been an interesting subject in the study of nuclear structure. In the present series of work, we investigate wobbling motion and chiral rotation by employing the microscopic framework of angular-momentum projection from cranked triaxially deformed mean-field states. In this first part, the wobbling motion is studied in detail. The consequences of the three-dimensional cranking are investigated. It is demonstrated that the multiple wobbling rotational bands naturally appear as a result of fully microscopic calculation. They have the characteristic properties that are expected from the macroscopic triaxial-rotor model or the phenomenological particle-triaxial-rotor model, although quantitative agreement with the existing data is not achieved. It is also found that the excitation spectrum reflects dynamics of the angular-momentum vector in the intrinsic frame of the mean field (transverse vs longitudinal wobbling). The results obtained by using the Woods-Saxon potential and the schematic separable interaction are mainly discussed, while some results with the Gogny D1S interaction are also presented.
AB - Rotation of triaxially deformed nucleus has been an interesting subject in the study of nuclear structure. In the present series of work, we investigate wobbling motion and chiral rotation by employing the microscopic framework of angular-momentum projection from cranked triaxially deformed mean-field states. In this first part, the wobbling motion is studied in detail. The consequences of the three-dimensional cranking are investigated. It is demonstrated that the multiple wobbling rotational bands naturally appear as a result of fully microscopic calculation. They have the characteristic properties that are expected from the macroscopic triaxial-rotor model or the phenomenological particle-triaxial-rotor model, although quantitative agreement with the existing data is not achieved. It is also found that the excitation spectrum reflects dynamics of the angular-momentum vector in the intrinsic frame of the mean field (transverse vs longitudinal wobbling). The results obtained by using the Woods-Saxon potential and the schematic separable interaction are mainly discussed, while some results with the Gogny D1S interaction are also presented.
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U2 - 10.1103/PhysRevC.97.024318
DO - 10.1103/PhysRevC.97.024318
M3 - Article
AN - SCOPUS:85042139425
SN - 2469-9985
VL - 97
JO - Physical Review C
JF - Physical Review C
IS - 2
M1 - 024318
ER -