Nuclear deformation and neutrinoless double-$\beta $ decay of $^{94,96}$Zr, $^{98,100}$Mo, $^{104}$Ru, $^{110}$Pd, $^{128,130}$Te and $^{150}$Nd nuclei in mass mechanism
K. Chaturvedi, R. Chandra, P. K. Rath, P. K. Raina, J. G. Hirsch

TL;DR
This study investigates neutrinoless double-beta decay in various nuclei using the Projected Hartree-Fock-Bogoliubov method, emphasizing the role of nuclear deformation and providing limits on neutrino masses based on calculated nuclear matrix elements.
Contribution
The paper applies the P-HFB framework to analyze neutrinoless double-beta decay, including deformation effects, and derives constraints on neutrino masses from half-life data.
Findings
Deformation effects on nuclear matrix elements are similar for 2ν and 0ν decay.
Calculated half-lives agree with experimental data for certain isotopes.
Limits on effective neutrino masses are extracted from decay half-lives.
Abstract
The decay of Zr, Mo, Ru, Pd, Te and Nd isotopes for the transition is studied in the Projected Hartree-Fock-Bogoliubov framework. In our earlier work, the reliability of HFB intrinsic wave functions participating in the decay of the above mentioned nuclei has been established by obtaining an overall agreement between the theoretically calculated spectroscopic properties, namely yrast spectra, reduced : transition probabilities, quadrupole moments , gyromagnetic factors as well as half-lives for the transition and the available experimental data. In the present work, we study the decay for the transition in the mass mechanism and…
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