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Heavy neutral leptons below the kaon mass at hodoscopic detectors
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abstract
Heavy neutral leptons ($N$) below the kaon mass are severely constrained by cosmology and lab-based searches for their decays in flight. If $N$ interacts via an additional force, $N\to\nu e^+e^-$ decays are enhanced and cosmological limits can be avoided. We show that the T2K and MicroBooNE neutrino experiments provide the best limits on the mixing of $N$ with muon-neutrinos, outperforming past-generation experiments, previously thought to dominate. We constrain models with electromagnetically-decaying and long-lived $N$, such as in a transition-magnetic-moment portal and in a leptophilic axion-like particle portal, invoked to explain the MiniBooNE excess. By considering these models as representative examples, our results show that explanations of the MiniBooNE excess that involve $e^+e^-$ pairs from long-lived particles are in tension with T2K, PS191, and MicroBooNE data. Similarly, these searches also constrain MiniBooNE explanations based on single photons due to the associated $e^+e^-$ decay mode via a virtual photon.
Forward citations
Cited by 3 Pith papers
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Heavy neutral leptons from light scalar in fixed target and forward search experiments
SHiP and FPF@FCC-hh are projected to extend experimental sensitivity to a light scalar mixing with the Higgs and to long-lived heavy neutrinos in a B-L seesaw model, with SHiP strongest for scalar masses around 0.5-1 GeV.
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Searches for heavy neutral lepton decays at spallation neutron sources
Current and future COHERENT detectors at the SNS can set competitive limits on HNL–neutrino mixings through pion/muon DAR production and in-detector e+e− decays, with muon mixing offering the strongest near-term reach.
- The Forward Neutrino Flux and its Secondaries at a 10 TeV Muon Collider
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