English

Decay tunnel instrumentation for the ENUBET neutrino beam

Instrumentation and Detectors 2020-06-24 v1 High Energy Physics - Experiment

Abstract

The uncertainty in the initial neutrino flux is the main limitation for a precise determination of the absolute neutrino cross section. The ERC funded ENUBET project (2016-2021) is studying a facility based on a narrow band beam to produce an intense source of electron neutrinos with a ten-fold improvement in accuracy. Since March 2019 ENUBET is also a Neutrino Platform experiment at CERN: NP06/ENUBET. A key element of the project is the instrumentation of the decay tunnel to monitor large angle positrons produced together with νe\nu_e in the three body decays of kaons (Ke3K_{e3}) and to discriminate them from neutral and charged pions. The need for an efficient and high purity e/π\pi separation over a length of several meters, and the requirements for fast response and radiation hardness imposed by the harsh beam environment, suggested the implementation of a longitudinally segmented Fe/scintillator calorimeter with a readout based on WLS fibers and SiPM detectors. An extensive experimental program through several test beam campaigns at the CERN-PS T9 beam line has been pursued on calorimeter prototypes, both with a shashlik and a lateral readout configuration. The latter, in which fibers collect the light from the side of the scintillator tiles, allows to place the light sensors away from the core of the calorimeter, thus reducing possible irradiation damages with respect to the shashlik design. This contribution will present the achievements of the prototyping activities carried out, together with irradiation tests made on the Silicon Photo-Multipliers. The results achieved so far pin down the technology of choice for the construction of the 3 m long demonstrator that will take data in 2021.

Keywords

Cite

@article{arxiv.2004.02532,
  title  = {Decay tunnel instrumentation for the ENUBET neutrino beam},
  author = {F. Acerbi and A. Berra and M. Bonesini and A. Branca and C. Brizzolari and G. Brunetti and M. Calviani and S. Capelli and S. Carturan and M. G. Catanesi and S. Cecchini and N. Charitonidis and F. Cindolo and G. Collazuol and E. Conti and F. Dal Corso and C. Delogu and G. De Rosa and A. Falcone and A. Gola and C. Jollet and V. Kain and B. Klicek and Y. Kudenko and M. Laveder and A. Longhin and L. Ludovici and E. Lutsenko and L. Magaletti and G. Mandrioli and A. Margotti and V. Mascagna and N. Mauri and L. Meazza 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 M. Pozzato and M. Prest and F. Pupilli and E. Radicioni and C. Riccio and A. C. Ruggieri and C. Scian and G. Sirri and M. Stipcevic and M. Tenti and F. Terranova and M. Torti and E. Vallazza and F. Velotti and M. Vesco and L. Votano},
  journal= {arXiv preprint arXiv:2004.02532},
  year   = {2020}
}

Comments

Talk presented at the "15th Topical Seminar on Innovative Particle and Radiation Detectors (IPRD19)", 14-17 October 2019. Siena, Italy. 9 pages, 7 figures