English

Constraining Neutrino Mass from Neutrinoless Double Beta Decay

High Energy Physics - Phenomenology 2013-11-27 v2 High Energy Physics - Experiment Nuclear Experiment Nuclear Theory

Abstract

We re-analyze the compatibility of the claimed observation of neutrinoless double beta decay (0νββ0\nu\beta\beta) in 76^{76}Ge with the new limits on the half-life of 136^{136}Xe from EXO-200 and KamLAND-Zen. Including recent calculations of the nuclear matrix elements (NMEs), we show that while the claim in 76^{76}Ge is still compatible with the individual limits from 136^{136}Xe, it is inconsistent with the KamLAND-Zen+EXO-200 combined limit for all but one NME calculations. After imposing the most stringent upper limit on the sum of light neutrino masses from Planck, we find that the canonical light neutrino contribution cannot satisfy the claimed 0νββ0\nu\beta\beta signature or saturate the current limit, irrespective of the NME uncertainties. However, inclusion of the heavy neutrino contributions, arising naturally in TeV-scale Left-Right symmetric models, can saturate the current limit of 0νββ0\nu\beta\beta. In a type-II seesaw framework, this imposes a lower limit on the lightest neutrino mass. Depending on the mass hierarchy, we obtain this limit to be in the range of 0.07 - 4 meV for a typical choice of the right-handed (RH) gauge boson and RH neutrino masses relevant for their collider searches. Using the 0νββ0\nu\beta\beta bounds, we also derive correlated constraints in the RH sector, complimentary to those from the LHC.

Keywords

Cite

@article{arxiv.1305.0056,
  title  = {Constraining Neutrino Mass from Neutrinoless Double Beta Decay},
  author = {P. S. Bhupal Dev and Srubabati Goswami and Manimala Mitra and Werner Rodejohann},
  journal= {arXiv preprint arXiv:1305.0056},
  year   = {2013}
}

Comments

6 pages, 4 figures, 3 tables; updated version including GERDA results; Figure 4 and Tables II and III added