Nuclear matrix elements for neutrinoless double beta decays and spin-dipole giant resonances
arXiv:2202.00361 · doi:10.1103/PhysRevC.105.L022501
Abstract
Nuclear matrix elements (NMEs) for neutrinoless double beta decays (DBDs) are required for studying neutrino physics beyond the standard model by DBD. The experimental spin-dipole (SD) giant resonance energy and the SD strength are shown for the first time to be closely related to the DBD-NME, and are used for studying the spin-isospin correlation and the quenching of the axial-vector coupling. So they are used to help the theoretical model calculation of the DBD-NME.
6 pages 4 figures
References in corpus (11)
- Double Beta Decay, Majorana Neutrinos, and Neutrino Mass
- Status and Future of Nuclear Matrix Elements for Neutrinoless Double-Beta Decay: A Review
- Nuclear matrix elements for double-β decay
- and nuclear matrix elements, QRPA, and isospin symmetry restoration
- Value of the axial-vector coupling strength in and decays: A review
- Impact of the quenching of on the sensitivity of experiments
- Muon capture rates: Evaluation within the Quasiparticle Random Phase Approximation
- Spin dipole nuclear matrix elements for double beta decay nuclei by charge-exchange reactions
- FSQP nuclear matrix elements for two neutrino double beta decays
- Double charge exchange (B,Li) reaction for double beta decay response
- Axial-vector weak coupling at medium momentum for astro neutrinos and double beta decays