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Properties of the rotational bands in Er161

  • L. Chen*
  • , X. H. Zhou
  • , Y. H. Zhang
  • , Y. Zheng
  • , M. L. Liu
  • , S. T. Wang
  • , F. Ma
  • , N. T. Zhang
  • , Y. D. Fang
  • , W. Hua
  • , S. Guo
  • , Y. H. Qiang
  • , H. B. Zhou
  • , G. S. Li
  • , H. X. Wang
  • , B. Ding
  • , X. G. Lei
  • , Y. X. Guo
  • , L. H. Zhu
  • , X. G. Wu
  • S. Q. Zhang, J. Meng
*Corresponding author for this work
  • CAS - Institute of Modern Physics
  • University of Chinese Academy of Sciences
  • China National Nuclear Corporation
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

High-spin states in Er161 have been studied experimentally using the Nd150(O16,5n) reaction at a beam energy of 86 MeV. The 5/2+[642], 3/2-[521], and 11/2-[505] bands are extended up to high-spin states, and particularly the α=-1/2 branch of the ground state 3/2-[521] band is revised significantly. The relatively enhanced E1 transitions from the 3/2-[521] band to the 5/2+[642] band are observed. The band properties are analyzed within the framework of a triaxial particle-rotor model, and near-prolate shape and triaxial deformation are proposed to the 3/2-[521] and 5/2+[642] bands, respectively. Signature inversion occurs in the 3/2-[521] band after the band crossing in Er161, and the systematics of the signature inversion associated with the 3/2-[521] configuration are discussed. By analyzing the properties of the relatively enhanced E1 transitions, it is found that the R(E1/E2) values show angular momentum dependence before the band crossing, and these enhanced E1 transitions could be attributed to octupole softness.

Original languageEnglish
Article number034318
JournalPhysical Review C - Nuclear Physics
Volume83
Issue number3
DOIs
StatePublished - 22 Mar 2011
Externally publishedYes

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