Theory of neutrinoless double-beta decay
Creators
- 1. Theoretical Physics Division, University of Ioannina, GR–451 10, Ioannina (Greece)
- 2. RCNP, Osaka University, Osaka, 567-0047 (Japan)
- 3. Laboratory of Theoretical Physics, JINR, 141980 Dubna, Moscow region (Russian Federation)
Description
Neutrinoless double-beta decay, which is a very old and yet elusive process, is reviewed. Its observation will signal that the lepton number is not conserved and that the neutrinos are Majorana particles. More importantly it is our best hope for determining the absolute neutrino-mass scale at the level of a few tens of meV. To achieve the last goal certain hurdles must be overcome involving particle, nuclear and experimental physics. Nuclear physics is important for extracting useful information from the data. One must accurately evaluate the relevant nuclear matrix elements—a formidable task. To this end, we review the sophisticated nuclear structure approaches which have recently been developed, and which give confidence that the required nuclear matrix elements can be reliably calculated employing different methods: (a) the various versions of the quasiparticle random phase approximations, (b) the interacting boson model, (c) the energy density functional method and (d) the large basis interacting shell model. It is encouraging that, for the light neutrino-mass term at least, these vastly different approaches now give comparable results. From an experimental point of view it is challenging, since the life times are long and one has to fight against formidable backgrounds. One needs large isotopically enriched sources and detectors with high-energy resolution, low thresholds and very low background. If a signal is found, it will be a tremendous accomplishment. The real task then, of course, will be the extraction of the neutrino mass from the observations. This is not trivial, since current particle models predict the presence of many mechanisms other than the neutrino mass, which may contribute to or even dominate this process. In particular, we will consider the following processes: 1. The neutrino induced, but neutrino-mass independent contribution. 2. Heavy left and/or right-handed neutrino-mass contributions. 3. Intermediate scalars (doubly charged, etc). 4. Supersymmetric (SUSY) contributions. We will show that it is possible to disentangle the various mechanisms and unambiguously extract the important neutrino-mass scale, if all the signatures of the reaction are searched for in a sufficient number of nuclear isotopes. (review article)
Availability note (English)
Available from http://dx.doi.org/10.1088/0034-4885/75/10/106301Additional details
Identifiers
Publishing Information
- Journal Title
- Reports on Progress in Physics
- Journal Volume
- 75
- Journal Issue
- 10
- Journal Page Range
- [52 p.]
- ISSN
- 0034-4885
- CODEN
- RPPHAG
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44047117
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Descriptors DEI
- DOUBLE BETA DECAY; ENERGY DENSITY; ENERGY RESOLUTION; EXTRACTION; INTERACTING BOSON MODEL; ISOTOPES; LEPTON NUMBER; MASS; NEUTRINOS; NUCLEAR MATRIX; NUCLEAR PHYSICS; NUCLEAR STRUCTURE; PARTICLE MODELS; RANDOM PHASE APPROXIMATION; REVIEWS; SUPERSYMMETRY; VISIBLE RADIATION
- Descriptors DEC
- APPROXIMATIONS; BETA DECAY; BETA-MINUS DECAY; CALCULATION METHODS; DECAY; DOCUMENT TYPES; ELECTROMAGNETIC RADIATION; ELEMENTARY PARTICLES; FERMIONS; LEPTONS; MASSLESS PARTICLES; MATHEMATICAL MODELS; MATRICES; NUCLEAR DECAY; NUCLEAR MODELS; PHYSICS; RADIATIONS; RESOLUTION; SEPARATION PROCESSES; SHELL MODELS; SYMMETRY