English

Status of three-neutrino oscillation parameters, circa 2013

High Energy Physics - Phenomenology 2014-05-28 v2 High Energy Physics - Experiment Nuclear Theory

Abstract

The standard three-neutrino (3nu) oscillation framework is being increasingly refined by results coming from different sets of experiments, using neutrinos from solar, atmospheric, accelerator and reactor sources. At present, each of the known oscillation parameters [the two squared mass gaps (delta m^2, Delta m^2) and the three mixing angles (theta_12}, theta_13, theta_23)] is dominantly determined by a single class of experiments. Conversely, the unknown parameters [the mass hierarchy, the theta_23 octant and the CP-violating phase delta] can be currently constrained only through a combined analysis of various (eventually all) classes of experiments. In the light of recent new results coming from reactor and accelerator experiments, and of their interplay with solar and atmospheric data, we update the estimated N-sigma ranges of the known 3nu parameters, and revisit the status of the unknown ones. Concerning the hierarchy, no significant difference emerges between normal and inverted mass ordering. A slight overall preference is found for theta_23 in the first octant and for nonzero CP violation with sin delta < 0; however, for both parameters, such preference exceeds 1 sigma only for normal hierarchy. We also discuss the correlations and stability of the oscillation parameters within different combinations of data sets.

Keywords

Cite

@article{arxiv.1312.2878,
  title  = {Status of three-neutrino oscillation parameters, circa 2013},
  author = {F. Capozzi and G. L. Fogli and E. Lisi and A. Marrone and D. Montanino and A. Palazzo},
  journal= {arXiv preprint arXiv:1312.2878},
  year   = {2014}
}

Comments

Updated and revised version, accepted for publication in PRD. The analysis includes the latest (March 2014) T2K disappearance data: all the figures and the numerical results have been updated, and parts of the text have been revised accordingly