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133In: A Rosetta Stone for decays of r-process nuclei

Authors :
Xu, Z. Y.
Madurga, M.
Grzywacz, R.
King, T. T.
Algora, A.
Andreyev, A. N.
Benito, J.
Berry, T.
Borge, M. J. G.
Costache, C.
De Witte, H.
Fijalkowska, A.
Fraile, L. M.
Fynbo, H. O. U.
Gottardo, A.
Halverson, C.
Harkness-Brennan, L. J.
Heideman, J.
Huyse, M.
Illana, A.
Janiak, Ł.
Judson, D. S.
Korgul, A.
Kurtukian-Nieto, T.
Lazarus, I.
Lică, R.
Lozeva, R.
Marginean, N.
Marginean, R.
Mazzocchi, C.
Mihai, C.
Mihai, R. E.
Morales, A. I.
Page, R. D.
Pakarinen, J.
Piersa-Siłkowska, M.
Podolyák, Zs.
Sarriguren, P.
Singh, M.
Sotty, Ch.
Stepaniuk, M.
Tengblad, O.
Turturica, A.
Van Duppen, P.
Vedia, V.
Viñals, S.
Warr, N.
Yokoyama, R.
Yuan, C. X.
Publication Year :
2023

Abstract

The $\beta$ decays from both the ground state and a long-lived isomer of $^{133}$In were studied at the ISOLDE Decay Station (IDS). With a hybrid detection system sensitive to $\beta$, $\gamma$, and neutron spectroscopy, the comparative partial half-lives (logft) have been measured for all their dominant $\beta$-decay channels for the first time, including a low-energy Gamow-Teller transition and several First-Forbidden (FF) transitions. Uniquely for such a heavy neutron-rich nucleus, their $\beta$ decays selectively populate only a few isolated neutron unbound states in $^{133}$Sn. Precise energy and branching-ratio measurements of those resonances allow us to benchmark $\beta$-decay theories at an unprecedented level in this region of the nuclear chart. The results show good agreement with the newly developed large-scale shell model (LSSM) calculations. The experimental findings establish an archetype for the $\beta$ decay of neutron-rich nuclei southeast of $^{132}$Sn and will serve as a guide for future theoretical development aiming to describe accurately the key $\beta$ decays in the rapid-neutron capture (r-) process.

Subjects

Subjects :
Nuclear Experiment
Nuclear Theory

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2306.01842
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevLett.131.022501