Total absorption $\gamma$-ray spectroscopy of the $\beta$ decays of $^{96\text{gs,m}}$Y
V. Guadilla, L. Le Meur, M. Fallot, J. A. Briz, M. Estienne, L. Giot,, A. Porta, A. Cucoanes, T. Shiba, A. -A. Zakari-Issoufou, A. Algora, J. L., Tain, J. Agramunt, D. Jordan, M. Monserrate, A. Montaner-Piz\'a, E. N\'acher,, S. E. A. Orrigo, B. Rubio, E. Valencia, J. \"Ayst\"o

TL;DR
This study used total absorption gamma-ray spectroscopy to precisely measure the beta decay of $^{96}$Y, revealing new decay intensities and improving understanding of reactor antineutrino spectra and decay heat contributions.
Contribution
It provides the first independent measurement of beta intensity distributions for both states of $^{96}$Y, highlighting the importance of total absorption spectroscopy in complex decay schemes.
Findings
Confirmed large ground state to ground state beta intensity (~96.6%)
Discovered previously undetected beta intensity above 6 MeV in $^{96m}$Y
Revealed significant differences in decay energies impacting reactor models
Abstract
The decays of the ground state (gs) and isomeric state (m) of Y have been studied with the total absorption -ray spectroscopy technique at the Ion Guide Isotope Separator On-Line facility. The separation of the 8 isomeric state from the 0 ground state was achieved thanks to the purification capabilities of the JYFLTRAP double Penning trap system. The -intensity distributions of both decays have been independently determined. In the analyses the de-excitation of the 1581.6 keV level in Zr, in which conversion electron emission competes with pair production, has been carefully considered and found to have significant impact on the -detector efficiency, influencing the -intensity distribution obtained. Our results for Y (0) confirm the large ground state to ground state -intensity probability,…
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