Relativistic description of nuclear matrix elements in neutrinoless double-$\beta$ decay
L. S. Song, J. M. Yao, P. Ring, J. Meng

TL;DR
This paper presents the first fully relativistic nuclear matrix element calculation for neutrinoless double-beta decay using advanced nuclear structure models, providing crucial data for experimental neutrino physics.
Contribution
It introduces a comprehensive relativistic approach to compute nuclear matrix elements for $0 uetaeta$ decay, incorporating full transition operators and state-of-the-art nuclear wave functions.
Findings
Relativistic matrix element for ${}^{150}$Nd decay is 5.60.
Full relativistic treatment impacts the matrix element significantly.
Predicted matrix element informs next-generation experiments.
Abstract
Neutrinoless double- () decay is related to many fundamental concepts in nuclear and particle physics beyond the standard model. Currently there are many experiments searching for this weak process. An accurate knowledge of the nuclear matrix element for the decay is essential for determining the effective neutrino mass once this process is eventually measured. We report the first full relativistic description of the decay matrix element based on a state-of-the-art nuclear structure model. We adopt the full relativistic transition operators which are derived with the charge-changing nucleonic currents composed of the vector coupling, axial-vector coupling, pseudoscalar coupling, and weak-magnetism coupling terms. The wave functions for the initial and final nuclei are determined by the multireference covariant density functional…
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