English

Non-standard interactions versus planet-scale neutrino oscillations

High Energy Physics - Phenomenology 2019-12-25 v2

Abstract

The low-energy threshold and the large detector size of Precision IceCube Next Generation Upgrade (PINGU) can make the study on neutrino oscillations with a planet-scale baseline possible. In this task, we consider the configuration that neutrinos are produced at CERN and detected in the PINGU detector, as a benchmark. We discuss its sensitivity of measuring the size of non-standard interactions (NSIs) in matter, which can be described by the parameter ϵαβ\epsilon_{\alpha\beta} (α\alpha and β\beta are flavors of neutrinos). We find that the CERN-PINGU configuration improves ϵ~μμϵμμϵττ\tilde{\epsilon}_{\mu\mu}\equiv\epsilon_{\mu\mu}-\epsilon_{\tau\tau} and ϵμτ\epsilon_{\mu\tau} significantly compared to the next-generation accelerator neutrino experiments. Most of degeneracy problems in the precision measurements can be resolved, except the one for ϵ~μμ0.035\tilde{\epsilon}_{\mu\mu}\sim-0.035. Moreover, we point out that this configuration can also be used to detect the CP violation brought by NSIs. Finally, we compare the physics potential in this configuration to that for DUNE, T2HK and P2O, and find that the CERN-PINGU configuration can significantly improve the sensitivity to NSIs.

Keywords

Cite

@article{arxiv.1909.12674,
  title  = {Non-standard interactions versus planet-scale neutrino oscillations},
  author = {Wei-Jie Feng and Jian Tang and Tse-Chun Wang and Yi-Xing Zhou},
  journal= {arXiv preprint arXiv:1909.12674},
  year   = {2019}
}

Comments

8 pages, 7 figures, make a comparison with other LBL experiments and add more references

R2 v1 2026-06-23T11:28:09.013Z