High-precision electron-capture $Q$ value measurement of $^{111}$In for electron-neutrino mass determination
Z.Ge, T.Eronen, A.deRoubin, K.S.Tyrin, L.Canete, S.Geldhof, A.Jokinen,, A. Kankainen, J. Kostensalo, J. Kotila, M. I. Krivoruchenko, I. D. Moore, D., A. Nesterenko, J. Suhonen, M. Vil\'en

TL;DR
This study precisely measured the electron-capture $Q$ value of $^{111}$In using a double Penning trap, identifying potential decay pathways for neutrino-mass experiments and significantly improving the accuracy over previous data.
Contribution
The paper provides the most precise $Q$ value measurement for $^{111}$In and clarifies which excited states are energetically accessible for decay, aiding neutrino-mass research.
Findings
Confirmed decay to 853.94 keV and 855.6 keV states are energetically allowed.
Ruled out decay to 866.60 keV and 864.8 keV states due to negative $Q$ values.
Identified a potential decay transition with a $Q$ value of 3.69 keV for neutrino-mass experiments.
Abstract
A precise determination of the ground state In () electron capture to ground state of Cd () value has been performed utilizing the double Penning trap mass spectrometer, JYFLTRAP. A value of 857.63(17) keV was obtained, which is nearly a factor of 20 more precise than the value extracted from the Atomic Mass Evaluation 2020 (AME2020). The high-precision electron-capture value measurement along with the nuclear energy level data of 866.60(6) keV, 864.8(3) keV, 855.6(10) keV, and 853.94(7) keV for Cd was used to determine whether the four states are energetically allowed for a potential ultra-low -value decay or electron-capture decay. Our results confirm that the excited states of 866.60(6) keV with spin-parity () of 3/2 and 864.8(3) keV with = 3/2 are ruled out due to their deduced electron-capture…
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Taxonomy
TopicsNeutrino Physics Research · Advanced Chemical Physics Studies · Atomic and Molecular Physics
