Double-beta decay of $^{150}$Nd to excited levels of $^{150}$Sm
A.S. Barabash, P. Belli, R. Bernabei, R.S. Boiko, F. Cappella, V. Caracciolo, R. Cerulli, F.A. Danevich, D.L. Fang, F. Ferella, A. Incicchitti, V.V. Kobychev, S.I. Konovalov, M. Laubenstein, A. Leoncini, V. Merlo, S. Nisi, O. Nitescu, D.V. Poda, O.G. Polischuk

TL;DR
This study measured the two-neutrino double-beta decay of $^{150}$Nd to excited states of $^{150}$Sm over nearly six years, providing new half-life data consistent with theoretical models and setting limits on related transitions.
Contribution
First measurement of $^{150}$Nd double-beta decay to excited states with detailed half-life results and comparison to theoretical predictions.
Findings
Half-life for decay to the 740.5 keV excited state: approximately 10^{20} years.
Evidence for decay to the 334.0 keV excited level with a half-life around 1.5×10^{20} years.
Set limits on other excited state transitions at 10^{20}-10^{21} years.
Abstract
The decay of Nd to the first excited 740.5 keV level of Sm was measured over 5.845 yr with the help of a four-crystal low-background HPGe spectrometry system in the underground low-background laboratory STELLA of LNGS-INFN. A 2.381 kg highly purified Nd-containing sample was employed as the decay source. The expected de-excitation gamma-quanta of the level with energies 334.0 keV and 406.5 keV were observed both in one-dimensional spectrum and in coincidence data resulting in the half-life yr. Interpreting an excess of the 334.0-keV peak area as an indication of the decay of Nd to the 334.0 keV excited level of Sm with a half-life of $T_{1/2}=[1.5^{+2.3}_{-0.6}\mathrm{(stat)}\pm…
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Taxonomy
TopicsNuclear physics research studies · Atomic and Molecular Physics · Nuclear Physics and Applications
