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The HIBEAM/NNBAR Calorimeter Prototype

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arxiv 2107.02147 v1 pith:FAMLR6MF submitted 2021-07-05 physics.ins-det

classification physics.ins-det
keywords experimentrightarrowwillcalorimeterhibeaminstalledmeasurementnnbar
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

The HIBEAM/NNBAR experiment is a free-neutron search for $n \rightarrow$ sterile $n$ and $n \rightarrow \bar{n}$ oscillations planned to be installed at the European Spallation Source under construction in Lund, Sweden. A key component in the experiment is the detector to identify $n-\bar{n}$ annihilation events, which will produce on average four pions with a final state invariant mass of two nucleons, around $1.9\,$GeV. The beamline and experiment are shielded from magnetic fields which would suppress $n \rightarrow \bar{n}$ transitions, thus no momentum measurement will be possible. Additionally, calorimetry for particles with kinetic energies below $600\,$MeV is challenging, as traditional sampling calorimeters used in HEP would suffer from poor shower statistics. A design study is underway to use a novel approach of a hadronic range measurement in multiple plastic scintillator layers, followed by EM calorimetery with lead glass. A prototype calorimeter system is being built, and will eventually be installed at an ESS test beam line for \textit{in situ} neutron background studies.

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Forward citations

Cited by 2 Pith papers

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

  1. Fundamental Nuclear and Particle Physics At Neutron Sources

    nucl-ex 2025-06 unverdicted novelty 2.0 of 10

    A community whitepaper makes the case that ESS and neutron sources offer a competitive, complementary route to search for new physics, with proposed experiments in neutron decay, EDM, baryon number violation, neutrino...

  2. The HIBEAM Experiment

    hep-ex 2024-12 unverdicted novelty 2.0 of 10

    HIBEAM/NNBAR is a proposed ESS experiment that would search for baryon-number-violating neutron oscillations with sensitivity up to 1000 times better than previous searches.

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