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Gamma Decay of Unbound Neutron-Hole States in ^{133}Sn.

Authors :
Vaquero V
Jungclaus A
Doornenbal P
Wimmer K
Gargano A
Tostevin JA
Chen S
Nácher E
Sahin E
Shiga Y
Steppenbeck D
Taniuchi R
Xu ZY
Ando T
Baba H
Garrote FLB
Franchoo S
Hadynska-Klek K
Kusoglu A
Liu J
Lokotko T
Momiyama S
Motobayashi T
Nagamine S
Nakatsuka N
Niikura M
Orlandi R
Saito T
Sakurai H
Söderström PA
Tveten GM
Vajta Z
Yalcinkaya M
Source :
Physical review letters [Phys Rev Lett] 2017 May 19; Vol. 118 (20), pp. 202502. Date of Electronic Publication: 2017 May 17.
Publication Year :
2017

Abstract

Excited states in the nucleus ^{133}Sn, with one neutron outside the double magic ^{132}Sn core, were populated following one-neutron knockout from a ^{134}Sn beam on a carbon target at relativistic energies at the Radioactive Isotope Beam Factory at RIKEN. Besides the γ rays emitted in the decay of the known neutron single-particle states in ^{133}Sn additional γ strength in the energy range 3.5-5.5 MeV was observed for the first time. Since the neutron-separation energy of ^{133}Sn is low, S_{n}=2.402(4)  MeV, this observation provides direct evidence for the radiative decay of neutron-unbound states in this nucleus. The ability of electromagnetic decay to compete successfully with neutron emission at energies as high as 3 MeV above threshold is attributed to a mismatch between the wave functions of the initial and final states in the latter case. These findings suggest that in the region southeast of ^{132}Sn nuclear structure effects may play a significant role in the neutron versus γ competition in the decay of unbound states. As a consequence, the common neglect of such effects in the evaluation of the neutron-emission probabilities in calculations of global β-decay properties for astrophysical simulations may have to be reconsidered.

Details

Language :
English
ISSN :
1079-7114
Volume :
118
Issue :
20
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
28581778
Full Text :
https://doi.org/10.1103/PhysRevLett.118.202502