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Position of the single-particle 3/2− state in 135Sn and the N=90 subshell closure

Authors :
A. Jungclaus
P. Doornenbal
J. Acosta
V. Vaquero
F. Browne
M.L. Cortes
A. Gargano
T. Koiwai
H. Naïdja
R. Taniuchi
J.A. Tostevin
K. Wimmer
A. Algora
H. Baba
A. Fernández
N. Lalović
E. Nácher
B. Rubio
H. Sakurai
Source :
Physics Letters B, Vol 851, Iss , Pp 138561- (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

The decay of excited states of the nucleus 135Sn, with three neutrons outside the doubly-magic 132Sn core, was studied in an experiment performed at the Radioactive Isotope Beam Factory at RIKEN. Several γ rays emitted from excited 135Sn ions were observed following one-neutron and one-neutron-one-proton removal from 136Sn and 137Sb beams, respectively, on a beryllium target at relativistic energies. Based on the analogy to 133Sn populated via one-neutron removal from 134Sn, an excitation energy of 695(15) keV is assigned to the 3/2− state with strongest single-particle character in 135Sn. This result provides the first direct information about the evolution of the neutron shell structure beyond N=82 and thus allows for a crucial test of shell-model calculations in this region. The experimental findings are in full agreement with calculations performed employing microscopic effective two-body interactions derived from CD-Bonn and N3LO nucleon-nucleon potentials, which do not predict a pronounced subshell gap at neutron number N=90. The occurrence of such a gap in 140Sn, i.e., when the 1f7/2 orbital is completely filled, had been proposed in the past, in analogy to the magicity of 48Ca, featuring a completely filled 0f7/2 orbital one harmonic oscillator shell below.

Subjects

Subjects :
Physics
QC1-999

Details

Language :
English
ISSN :
03702693
Volume :
851
Issue :
138561-
Database :
Directory of Open Access Journals
Journal :
Physics Letters B
Publication Type :
Academic Journal
Accession number :
edsdoj.0b4c46603f6b48e1bed3fb271ef6008a
Document Type :
article
Full Text :
https://doi.org/10.1016/j.physletb.2024.138561