Neutrinoless double beta decay and neutrino mass

Author:

Vergados J. D.123,Ejiri H.45,Šimkovic F.678

Affiliation:

1. ARC Centre of Excellence in Particle Physics (CoEPP), Department of Physics, University of Adelaide, Adelaide SA 5005, Australia

2. Center for Axion and Precision Physics (CAPP), IBS, KAIST University, Daejeon 305-701, South Korea

3. Board of Trustees, Technical Educational Institute, Kozani, Greece

4. RCNP, Osaka University, Osaka 567-0047, Japan

5. Nuclear Science, Czech Technical University, Brehova, Prague, Czech Republic

6. Laboratory of Theoretical Physics, JINR, Dubna 141980, Moscow region, Russia

7. Department of Nuclear Physics and Biophysics, Comenius University, Mlynská dolina F1, Bratislava SK–842 15, Slovakia

8. Czech Technical University in Prague, Prague 128-00, Czech Republic

Abstract

The observation of neutrinoless double beta decay (DBD) will have important consequences. First it will signal that lepton number is not conserved and the neutrinos are Majorana particles. Second, it represents our best hope for determining the absolute neutrino mass scale at the level of a few tens of meV. To achieve the last goal, however, certain hurdles have to be overcome involving particle, nuclear and experimental physics. Particle physics is important since it provides the mechanisms for neutrinoless DBD. In this review, we emphasize the light neutrino mass mechanism. Nuclear physics is important for extracting the useful information from the data. One must accurately evaluate the relevant nuclear matrix elements (NMEs), a formidable task. To this end, we review the recently developed sophisticated nuclear structure approaches, employing different methods and techniques of calculation. We also examine the question of quenching of the axial vector coupling constant, which may have important consequences on the size of the NMEs. From an experimental point of view it is challenging, since the life times are extremely long and one has to fight against formidable backgrounds. One needs large isotopically enriched sources and detectors with good energy resolution and very low background.

Publisher

World Scientific Pub Co Pte Lt

Subject

General Physics and Astronomy,Nuclear and High Energy Physics

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