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Pseudo spin doublet bands and Gallagher Moszkowski doublet bands in $^{100}$Y

Authors :
Wang, E. H.
Hamilton, J. H.
Ramayya, A. V.
Zachary, C. J.
Lemasson, A.
Navin, A.
Rejmund, M.
Bhattacharyya, S.
Chen, Q. B.
Zhang, S. Q.
Eldridge, J. M.
Hwang, J. K.
Brewer, N. T.
Luo, Y. X.
Rasmussen, J. O.
Zhu, S. J.
Ter-Akopian, G. M.
Oganessian, Yu. Ts.
Caamaño, M.
Clément, E.
Delaune, O.
Farget, F.
de France, G.
Jacquot, B.
Source :
Phys. Rev. C 103, 034301 (2021)
Publication Year :
2021

Abstract

New transitions in neutron rich $^{100}$Y have been identified in a $^9$Be+$^{238}$U experiment with mass- and Z- gates to provide full fragment identification. These transitions and high spin levels of $^{100}$Y have been investigated by analyzing the high statistics $\gamma$-$\gamma$-$\gamma$ and $\gamma$-$\gamma$-$\gamma$-$\gamma$ coincidence data from the spontaneous fission of $^{252}$Cf at the Gammasphere detector array. Two new bands, 14 new levels and 23 new transitions have been identified. The $K^{\pi}=4^+$ new band decaying to an 1s isomeric state is assigned to be the high-$K$ Gallagher-Moszkowski (GM) partner of the known $K^{\pi}=1^+$ band, with the $\pi 5/2[522] \otimes \nu 3/2[411]$ configuration. This 4$^+$ band is also proposed to be the pseudo spin partner of the new $K^{\pi}=5^+$ band with a 5$^{+}$ $\pi 5/2[422] \otimes \nu 5/2[413]$ configuration, to form a $\pi 5/2[422] \otimes \nu [312$ $5/2,3/2]$ neutron pseudospin doublet. Constrained triaxial covariant density functional theory and quantal particle rotor model calculations have been applied to interpret the band structure and available electromagnetic transition probabilities and are found in good agreement with experimental values.

Subjects

Subjects :
Nuclear Experiment
Nuclear Theory

Details

Database :
arXiv
Journal :
Phys. Rev. C 103, 034301 (2021)
Publication Type :
Report
Accession number :
edsarx.2103.02358
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevC.103.034301