What is matter according to particle physics and why try to observe its creation in lab
arXiv:2103.02642
Abstract
The standard model of elementary interactions has long qualified as a theory of matter, in which the postulated conservation laws (one baryonic and three leptonic) acquire theoretical meaning. However, recent observations of lepton number violations -- neutrino oscillations -- demonstrate its incompleteness. We discuss why these considerations suggest the correctness of Ettore Majorana's ideas on the nature of neutrino mass, and add further interest to the search for an ultra-rare nuclear process in which two particles of matter (electrons) are created, commonly called neutrinoless double beta decay. The approach of the discussion is mainly historical and its character is introductory. Some technical considerations, which highlight the usefulness of Majorana's representation of gamma matrices, are presented in the appendix.
24 pages, 1 figure, 4 tables. Accepted for publication in Universe
References in corpus (7)
- Measurement of the solar neutrino capture rate with gallium metal. III: Results for the 2002--2007 data-taking period
- Solar neutrino measurements in Super-Kamiokande-II
- Final Results of GERDA on the Search for Neutrinoless Double- Decay
- Measurement of Atmospheric Tau Neutrino Appearance with IceCube DeepCore
- Final result of CUPID-0 phase-I in the search for the Se Neutrinoless Double Beta Decay
- Empirical inference on the Majorana mass of the ordinary neutrinos
- Discovery probabilities of Majorana neutrinos based on cosmological data