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Title: Damping signatures at JUNO, a medium-baseline reactor neutrino oscillation experiment
A bstract We study damping signatures at the Jiangmen Underground Neutrino Observatory (JUNO), a medium-baseline reactor neutrino oscillation experiment. These damping signatures are motivated by various new physics models, including quantum decoherence, ν 3 decay, neutrino absorption, and wave packet decoherence. The phenomenological effects of these models can be characterized by exponential damping factors at the probability level. We assess how well JUNO can constrain these damping parameters and how to disentangle these different damping signatures at JUNO. Compared to current experimental limits, JUNO can significantly improve the limits on τ 3 / m 3 in the ν 3 decay model, the width of the neutrino wave packet σ x , and the intrinsic relative dispersion of neutrino momentum σ rel .
Authors:
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Award ID(s):
2111546
Publication Date:
NSF-PAR ID:
10349408
Journal Name:
Journal of High Energy Physics
Volume:
2022
Issue:
6
ISSN:
1029-8479
Sponsoring Org:
National Science Foundation
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