Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10724857 | Physics Letters B | 2008 | 7 Pages |
Abstract
The level scheme of 212Rn has been extended to spins of â¼38â and excitation energies of about 13 MeV using the 204Hg(13C,â5n)212Rn reaction and γ-ray spectroscopy. Time correlated techniques have been used to obtain sensitivity to weak transitions and channel selectivity. The excitation energy of the 22+ core-excited isomer has been established at 6174 keV. Two isomers with Ï=25(2) ns and Ï=12(2) ns are identified at 12211 and 12548 keV, respectively. These are the highest-spin nuclear isomers now known, and are attributed to configurations involving triple neutron core-excitations coupled to the aligned valence protons. Semi-empirical shell-model calculations can account for most states observed, but with significant energy discrepancies for some configurations.
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Authors
G.D. Dracoulis, G.J. Lane, A.P. Byrne, P.M. Davidson, T. Kibédi, P. Nieminen, H. Watanabe, A.N. Wilson,