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Neutrinoless Double Beta Decay in Multiple Isotopes for Fingerprints Identification of Operators and Models
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abstract
Neutrinoless double beta ($0\nu\beta\beta$) decay is the most promising way to determine whether neutrinos are Majorana particles. There are many experiments based on different isotopes searching for $0\nu\beta\beta$ decay. Combining the searches of $0\nu\beta\beta$ decay in multiple isotopes provides a possible method to distinguish operators and different models. The contributions to $0\nu\beta\beta$ decay come from standard, long-range, and short-range mechanisms. We analyze the scenario in which the standard and short-range operators exist simultaneously within the framework of low-energy effective field theory. Five specific models are considered, which can realize neutrino mass and can contribute to $0\nu\beta\beta$ decay via multiple mechanisms. A criterion to evaluate the possibilities of future experiments to discriminate operators and models is built. We find that the complementary searches for $0\nu\beta\beta$ decay in different isotopes can distinguish the cases that contain the low-energy effective operators $\mathcal{O}_{1,2,5}$ and R-parity violating supersymmetry model. For other cases and models, the experimental searches within multiple isotopes can also more effectively constrain the parameter region than with only one isotope.
Forward citations
Cited by 2 Pith papers
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RGE solver for the complete dim-7 SMEFT interactions and its application to $0\nu\beta\beta$ decay
A new Python package, D7RGESolver, runs the full one-loop renormalization group equations for dimension-5 and dimension-7 SMEFT operators, and applying it to 0νββ decay yields meaningful constraints on 55 Wilson coeff...
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Beyond Half-Life Limits: Robust Operator-Level Interpretation of Multi-Isotope Neutrinoless Double-Beta Decay
Among tested operators, light-Majorana exchange gives the most stable multi-isotope coefficient limits and half-life ratios; selected dim-6 operators are intermediate; short-range dim-9 examples can be highly NME- and...
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