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arXiv:2504.20163·v2·High Energy Physics — Phenomenology

Implications of the KM3NeT Ultrahigh-energy Event on Neutrino Self-interactions

Yuxuan He🇨🇳 · Jia Liu🇨🇳 · Xiao-Ping Wang🇨🇳 · Yi-Ming Zhong🇨🇳

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Abstract

Neutrino self-interactions (SI) mediated by light bosonic particles can produce characteristic spectral dips in astrophysical neutrino fluxes, thereby altering the expected energy spectrum. The high-energy astrophysical neutrino spectrum has been extensively used to probe SI models through these distinctive features. The recent detection of the ultrahigh-energy event KM3-230213A presents a new opportunity to explore SI phenomenology at extreme energies. In this work, we investigate two implications of this observation, assuming the event originates from a diffuse power-law spectrum. First, we find that SI-induced spectral distortions can mildly alleviate the tension between the KM3-230213A detection and the previous non-observation of PeV-scale neutrinos in IceCube data. Second, we derive the strongest constraints on the -flavored SI coupling strength for mediator masses around 100 MeV. Our analysis shows that neutrino telescopes can surpass existing collider bounds in this mass range. In the near future, IceCube-Gen2 is expected to significantly enhance SI sensitivity, including regions relevant to alleviating the Hubble and neutrino mass tensions.

Comments: 10 pages, 6 figures, 2 tables

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