English

A high precision neutrino beam for a new generation of short baseline experiments

Instrumentation and Detectors 2019-01-16 v1 High Energy Physics - Experiment Accelerator Physics

Abstract

The current generation of short baseline neutrino experiments is approaching intrinsic source limitations in the knowledge of flux, initial neutrino energy and flavor. A dedicated facility based on conventional accelerator techniques and existing infrastructures designed to overcome these impediments would have a remarkable impact on the entire field of neutrino oscillation physics. It would improve by about one order of magnitude the precision on νμ\nu_\mu and νe\nu_e cross sections, enable the study of electroweak nuclear physics at the GeV scale with unprecedented resolution and advance searches for physics beyond the three-neutrino paradigm. In turn, these results would enhance the physics reach of the next generation long baseline experiments (DUNE and Hyper-Kamiokande) on CP violation and their sensitivity to new physics. In this document, we present the physics case and technology challenge of high precision neutrino beams based on the results achieved by the ENUBET Collaboration in 2016-2018. We also set the R&D milestones to enable the construction and running of this new generation of experiments well before the start of the DUNE and Hyper-Kamiokande data taking. We discuss the implementation of this new facility at three different level of complexity: νμ\nu_\mu narrow band beams, νe\nu_e monitored beams and tagged neutrino beams. We also consider a site specific implementation based on the CERN-SPS proton driver providing a fully controlled neutrino source to the ProtoDUNE detectors at CERN.

Keywords

Cite

@article{arxiv.1901.04768,
  title  = {A high precision neutrino beam for a new generation of short baseline experiments},
  author = {F. Acerbi and G. Ballerini and S. Bolognesi and M. Bonesini and C. Brizzolari and G. Brunetti and S. Carturan and M. G. Catanesi and S. Cecchini and F. Cindolo and G. Collazuol and E. Conti and F. Dal Corso and G. De Rosa and F. Di Lodovico and C. Delogu and A. Falcone and A. Gola and R. A. Intonti and C. Jollet and B. Klicek and Y. Kudenko and M. Laveder and A. Longhin and L. Ludovici and L. Magaletti and G. Mandrioli and A. Margotti and V. Mascagna and N. Mauri and A. Meregaglia and M. Mezzetto and M. Nessi and A. Paoloni and M. Pari and E. Parozzi and L. Pasqualini and G. Paternoster and L. Patrizii and C. Piemonte and M. Pozzato and F. Pupilli and M. Prest and E. Radicioni and C. Riccio and A. C. Ruggeri and F. Sanchez Nieto and G. Sirri and M. Soldani and M. Stipcevic and M. Tenti and F. Terranova and M. Torti and E. Vallazza and M. Vesco and L. Votano},
  journal= {arXiv preprint arXiv:1901.04768},
  year   = {2019}
}

Comments

13 pages, 3 figures, submitted as an input document for the European Particle Physics Strategy. Dec. 2018