English

Constraints on the Solar $\Delta m^2$ using Daya Bay & RENO

High Energy Physics - Experiment 2019-03-06 v3 High Energy Physics - Phenomenology

Abstract

We demonstrate that the currently running short baseline reactor experiments, especially Daya Bay, can put a significant upper bound on Δm212\Delta m^2_{21}. This novel approach to determining Δm212\Delta m^2_{21} can be performed with the current data of both Daya Bay \& RENO and provides additional information on Δm212\Delta m^2_{21} in a different L/EL/E range (\sim 0.5 km/MeV) for an important consistency check on the 3 flavor massive neutrino paradigm. Upper limits by Daya Bay and RENO and a possible lower limit from Daya Bay, before the end of 2020, will be the only new information on this important quantity until the medium baseline reactor experiment, JUNO, gives a very precise measurement in the middle of the next decade. In this study θ12\theta_{12} value is fixed since its impact on the Δm212\Delta m^2_{21} measurement is relatively small as discussed in the Appendix.

Keywords

Cite

@article{arxiv.1808.09150,
  title  = {Constraints on the Solar $\Delta m^2$ using Daya Bay & RENO},
  author = {Seon-Hee Seo and Stephen Parke},
  journal= {arXiv preprint arXiv:1808.09150},
  year   = {2019}
}

Comments

6 pages, 2 figures, 1 table. Accepted version in PRD