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Coulomb excitation of Rn-222

Authors :
Spagnoletti, P.
Butler, P. A.
Gaffney, L. P.
Abrahams, K.
Bowry, M.
Cederkäll, J.
Chupp, T.
de Angelis, G.
De Witte, H.
Garrett, P. E.
Goldkuhle, A.
Henrich, C.
Illana, A.
Johnston, K.
Joss, D. T.
Keatings, J. M.
Kelly, N. A.
Komorowska, M.
Konki, J.
Kröll, T.
Lozano, M.
Singh, B. S. Nara
O'Donnell, D.
Ojala, J.
Page, R. D.
Pedersen, L. G.
Raison, C.
Reiter, P.
Rodriguez, J. A.
Rosiak, D.
Rothe, S.
Scheck, M.
Seidlitz, M.
Shneidman, T. M.
Siebeck, B.
Sinclair, J.
Smith, J. F.
Stryjczyk, M.
Van Duppen, P.
Viñals, S.
Virtanen, V.
Wrzosek-Lipska, K.
Warr, N.
Zielińska, M.
Source :
Physical Review C
Publication Year :
2022
Publisher :
AMER PHYSICAL SOC, 2022.

Abstract

The nature of quadrupole and octupole collectivity in 222Rn was investigated by determining the electric-quadrupole (E2) and octupole (E3) matrix elements using subbarrier, multistep Coulomb excitation. The radioactive 222Rn beam, accelerated to 4.23 MeV/u, was provided by the HIE-ISOLDE facility at CERN. Data were collected in the Miniball γ-ray spectrometer following the bombardment of two targets, 120Sn and 60Ni. Transition E2 matrix elements within the ground-state and octupole bands were measured up to 10ℏ and the results were consistent with a constant intrinsic electric-quadrupole moment, 518(11)efm2. The values of the intrinsic electric-octupole moment for the 0+→3− and 2+→5− transitions were found to be respectively 2360+300−210efm3 and 2300+300−500efm3 while a smaller value, 1200+500−900efm3, was found for the 2+→1− transition. In addition, four excited non-yrast states were identified in this work via γ−γ coincidences.

Details

Language :
English
ISSN :
24699985
Database :
OpenAIRE
Journal :
Physical Review C
Accession number :
edsair.doi.dedup.....87d1269e02b952f3b9825ae90173113e