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Design and performance of the ENUBET monitored neutrino beam

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arxiv 2308.09402 v1 pith:PLM3QH56 submitted 2023-08-18 hep-ex hep-phphysics.acc-phphysics.ins-det

classification hep-exhep-phphysics.acc-phphysics.ins-det
keywords neutrinobeamdesigndetectorsmonitoredtunnelachievedbeams
verification ladder T0 review T1 audit T2 compute T3 formal

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The ENUBET project is aimed at designing and experimentally demonstrating the concept of monitored neutrino beams. These novel beams are enhanced by an instrumented decay tunnel, whose detectors reconstruct large-angle charged leptons produced in the tunnel and give a direct estimate of the neutrino flux at the source. These facilities are thus the ideal tool for high-precision neutrino cross-section measurements at the GeV scale because they offer superior control of beam systematics with respect to existing facilities. In this paper, we present the first end-to-end design of a monitored neutrino beam capable of monitoring lepton production at the single particle level. This goal is achieved by a new focusing system without magnetic horns, a 20 m normal-conducting transfer line for charge and momentum selection, and a 40 m tunnel instrumented with cost-effective particle detectors. Employing such a design, we show that percent precision in cross-section measurements can be achieved at the CERN SPS complex with existing neutrino detectors.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Construction, commissioning, and performance of the ENUBET demonstrator

    hep-ex 2026-08 conditional novelty 5.0 of 10

    The ENUBET Demonstrator, a 1.7 m iron-scintillator calorimeter prototype, achieves the electron energy resolution (≈15%/√E stochastic term) and e/π/μ discrimination required for monitored neutrino beams, though SiPM s...

  2. The ENUBET monitored neutrino beam and its implementation at CERN

    hep-ex 2025-01 conditional novelty 4.0 of 10

    ENUBET's instrumented decay tunnel can monitor the neutrino flux at the 1% level, enabling precision neutrino cross-section measurements with a beamline that needs no magnetic horn.

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