The $^{150}$Nd($^3$He,$t$) and $^{150}$Sm($t$,$^3$He) reactions with applications to $\beta\beta$ decay of $^{150}$Nd
C.J. Guess, T. Adachi, H. Akimune, A. Algora, Sam M. Austin, D. Bazin,, B.A. Brown, C. Caesar, J.M. Deaven, H. Ejiri, E. Estevez, D. Fang, A., Faessler, D. Frekers, H. Fujita, Y. Fujita, M. Fujiwara, G.F. Grinyer, M.N., Harakeh, K. Hatanaka, C. Herlitzius, K. Hirota, G.W. Hitt

TL;DR
This study investigates nuclear reactions involving $^{150}$Nd and $^{150}$Sm to understand their role in neutrinoless double beta decay, providing experimental data to refine theoretical models like QRPA for better decay half-life predictions.
Contribution
It offers new experimental measurements of intermediate states relevant to double beta decay and compares these with QRPA calculations, enhancing understanding of neutrino response mechanisms.
Findings
Extracted monopole and dipole contributions to excitation spectra.
Found that the calculated 2νββ matrix element is about half of experimental values.
Identified the isovector spin-flip giant monopole resonance and confirmed sum rule exhaustion.
Abstract
The Nd(He,) reaction at 140 MeV/u and Sm(,He) reaction at 115 MeV/u were measured, populating excited states in Pm. The transitions studied populate intermediate states of importance for the (neutrinoless) decay of Nd to Sm. Monopole and dipole contributions to the measured excitation-energy spectra were extracted by using multipole decomposition analyses. The experimental results were compared with theoretical calculations obtained within the framework of Quasiparticle Random-Phase Approximation (QRPA), which is one of the main methods employed for estimating the half-life of the neutrinoless decay () of Nd. The present results thus provide useful information on the neutrino responses for evaluating the and matrix elements. The …
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