Establishing Earth's Matter Effect in Atmospheric Neutrino Oscillations at IceCube DeepCore

Fuente: arXiv
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Main Author: Upadhyay, Anuj Kumar
Format: Preprint
Published: 2026
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author Upadhyay, Anuj Kumar
author_facet Upadhyay, Anuj Kumar
contents The discovery of the non-zero value of $θ_{13}$ has opened an exciting opportunity to probe the Earth's matter effects in three-flavor oscillations of atmospheric neutrinos. These matter effects depend on both neutrino energy and the electron density distributions encountered during their propagation through Earth. In this contribution, we present preliminary sensitivities from the DeepCore detector, a densely instrumented sub-array of the IceCube neutrino observatory at the South Pole, demonstrating its ability to observe these matter effects in atmospheric neutrino oscillations. Using simulated data equivalent to 9.3 years of observations at IceCube DeepCore, we show the sensitivity of the DeepCore to reject the vacuum oscillation hypothesis and align with the Preliminary Reference Earth Model. Additionally, we present the expected improvement in sensitivity for rejecting the vacuum oscillations using the upcoming IceCube Upgrade, a low-energy extension of the IceCube detector.
format Preprint
id arxiv_https___arxiv_org_abs_2601_23047
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Establishing Earth's Matter Effect in Atmospheric Neutrino Oscillations at IceCube DeepCore
Upadhyay, Anuj Kumar
High Energy Physics - Phenomenology
High Energy Physics - Experiment
Instrumentation and Detectors
The discovery of the non-zero value of $θ_{13}$ has opened an exciting opportunity to probe the Earth's matter effects in three-flavor oscillations of atmospheric neutrinos. These matter effects depend on both neutrino energy and the electron density distributions encountered during their propagation through Earth. In this contribution, we present preliminary sensitivities from the DeepCore detector, a densely instrumented sub-array of the IceCube neutrino observatory at the South Pole, demonstrating its ability to observe these matter effects in atmospheric neutrino oscillations. Using simulated data equivalent to 9.3 years of observations at IceCube DeepCore, we show the sensitivity of the DeepCore to reject the vacuum oscillation hypothesis and align with the Preliminary Reference Earth Model. Additionally, we present the expected improvement in sensitivity for rejecting the vacuum oscillations using the upcoming IceCube Upgrade, a low-energy extension of the IceCube detector.
title Establishing Earth's Matter Effect in Atmospheric Neutrino Oscillations at IceCube DeepCore
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
Instrumentation and Detectors
url https://arxiv.org/abs/2601.23047