English

Neutrino oscillation physics at an upgraded CNGS with large next generation liquid Argon TPC detectors

High Energy Physics - Phenomenology 2009-11-11 v1

Abstract

The determination of the missing Ue3U_{e3} element (magnitude and phase) of the PMNS neutrino mixing matrix is possible via the detection of \numu\nue\numu\to\nue oscillations at a baseline LL and energy EE given by the atmospheric observations, corresponding to a mass squared difference E/LΔm22.5×103eV2E/L \sim \Delta m^2\simeq 2.5\times 10^{-3} eV^2. While the current optimization of the CNGS beam provides limited sensitivity to this reaction, we discuss in this document the physics potential of an intensity upgraded and energy re-optimized CNGS neutrino beam coupled to an off-axis detector. We show that improvements in sensitivity to θ13\theta_{13} compared to that of T2K and NoVA are possible with a next generation large liquid Argon TPC detector located at an off-axis position (position rather distant from LNGS, possibly at shallow depth). We also address the possibility to discover CP-violation and disentangle the mass hierarchy via matter effects. The considered intensity enhancement of the CERN SPS has strong synergies with the upgrade/replacement of the elements of its injector chain (Linac, PSB, PS) and the refurbishing of its own elements, envisioned for an optimal and/or upgraded LHC luminosity programme.

Keywords

Cite

@article{arxiv.hep-ph/0609106,
  title  = {Neutrino oscillation physics at an upgraded CNGS with large next generation liquid Argon TPC detectors},
  author = {A. Meregaglia and A. Rubbia},
  journal= {arXiv preprint arXiv:hep-ph/0609106},
  year   = {2009}
}

Comments

37 pages, 20 figures