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Total absorption spectroscopy of the β decay of Zr101,102 and Tc109

Authors :
D.P. Scriven
A. Palmisano
Tomislav Marketin
J. Gombas
Peter Möller
Sean Liddick
Paul DeYoung
A. Spyrou
Alejandro Algora
Alexander Dombos
C. J. Prokop
F. Naqvi
S. J. Quinn
T. N. Ginter
Anna Simon
J. Brett
Mallory Smith
Thomas Baumann
Benjamin P. Crider
J. Pereira
Stephanie Lyons
Pedro Sarriguren
S. Valenta
W.-J. Ong
Source :
Physical Review C. 103
Publication Year :
2021
Publisher :
American Physical Society (APS), 2021.

Abstract

The $\ensuremath{\beta}$ decay of $^{101,102}\mathrm{Zr}$ and $^{109}\mathrm{Tc}$ was studied using the technique of total absorption spectroscopy. The experiment was performed at the National Superconducting Cyclotron Laboratory using the Summing NaI(Tl) (SuN) detector in the first-ever application of total absorption spectroscopy with a fast beam produced via projectile fragmentation. The $\ensuremath{\beta}$-decay feeding intensity and Gamow-Teller transition strength distributions were extracted for these three decays. The extracted distributions were compared to three different quasiparticle random-phase approximation (QRPA) models based on different mean-field potentials. A comparison with calculations from one of the QRPA models was performed to learn about the ground-state shape of the parent nucleus. For $^{101}\mathrm{Zr}$ and $^{102}\mathrm{Zr}$, calculations assuming a pure shape configuration (oblate or prolate) were not able to reproduce the extracted distributions. These results may indicate that some type of mixture between oblate and prolate shapes is necessary to reproduce the extracted distributions. For $^{109}\mathrm{Tc}$, a comparison of the extracted distributions with QRPA calculations suggests a dominant oblate configuration. The other two QRPA models are commonly used to provide $\ensuremath{\beta}$-decay properties in $r$-process network calculations. This work shows the importance of making comparisons between the experimental and theoretical $\ensuremath{\beta}$-decay distributions, rather than just half-lives and $\ensuremath{\beta}$-delayed neutron emission probabilities, as close to the $r$-process path as possible.

Details

ISSN :
24699993 and 24699985
Volume :
103
Database :
OpenAIRE
Journal :
Physical Review C
Accession number :
edsair.doi...........ed19167d8ed863b16bfbb0d69fe4127c