Two-detector flavor sensitivity to ultra-high-energy cosmic neutrinos

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Hauptverfasser: Testagrossa, Federico, Fiorillo, Damiano F. G., Bustamante, Mauricio
Format: Preprint
Veröffentlicht: 2023
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author Testagrossa, Federico
Fiorillo, Damiano F. G.
Bustamante, Mauricio
author_facet Testagrossa, Federico
Fiorillo, Damiano F. G.
Bustamante, Mauricio
contents Ultra-high-energy (UHE) cosmic neutrinos, with energies above 100 PeV, could be finally discovered in the near future. Measuring their flavor composition would reveal information about their production and propagation, but new techniques are needed for UHE neutrino telescopes to have the capabilities to do it. We address this by proposing a new way to measure the UHE neutrino flavor composition that does not rely on individual telescopes having flavor-identification capabilities. We manufacture flavor sensitivity from the joint detection by one telescope sensitive to all flavors -- the radio array of IceCube-Gen2 -- and one mostly sensitive to $ν_τ$ -- GRAND. From this limited flavor sensitivity, predominantly to $ν_τ$, and even under conservative choices of neutrino flux and detector size, we extract important insight. For astrophysics, we forecast meaningful constraints on the neutrino production mechanism; for fundamental physics, vastly improved constraints on Lorentz-invariance violation. These are the first measurement forecasts of the UHE $ν_τ$ content.
format Preprint
id arxiv_https___arxiv_org_abs_2310_12215
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Two-detector flavor sensitivity to ultra-high-energy cosmic neutrinos
Testagrossa, Federico
Fiorillo, Damiano F. G.
Bustamante, Mauricio
High Energy Astrophysical Phenomena
High Energy Physics - Experiment
High Energy Physics - Phenomenology
Nuclear Theory
Ultra-high-energy (UHE) cosmic neutrinos, with energies above 100 PeV, could be finally discovered in the near future. Measuring their flavor composition would reveal information about their production and propagation, but new techniques are needed for UHE neutrino telescopes to have the capabilities to do it. We address this by proposing a new way to measure the UHE neutrino flavor composition that does not rely on individual telescopes having flavor-identification capabilities. We manufacture flavor sensitivity from the joint detection by one telescope sensitive to all flavors -- the radio array of IceCube-Gen2 -- and one mostly sensitive to $ν_τ$ -- GRAND. From this limited flavor sensitivity, predominantly to $ν_τ$, and even under conservative choices of neutrino flux and detector size, we extract important insight. For astrophysics, we forecast meaningful constraints on the neutrino production mechanism; for fundamental physics, vastly improved constraints on Lorentz-invariance violation. These are the first measurement forecasts of the UHE $ν_τ$ content.
title Two-detector flavor sensitivity to ultra-high-energy cosmic neutrinos
topic High Energy Astrophysical Phenomena
High Energy Physics - Experiment
High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2310.12215