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Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore

We revisit neutrino oscillations in matter considering the open quantum system framework, which allows to introduce possible decoherence effects generated by New Physics in a phenomenological manner. We assume that the decoherence parameters $\gamma _{ij}$ may depend on the neutrino energy, as $\gam...

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Autores principales: Coloma, Pilar, Lopez-Pavon, Jacobo, Martinez-Soler, Ivan, Nunokawa, Hiroshi
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1140/epjc/s10052-018-6092-6
http://cds.cern.ch/record/2311410
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author Coloma, Pilar
Lopez-Pavon, Jacobo
Martinez-Soler, Ivan
Nunokawa, Hiroshi
author_facet Coloma, Pilar
Lopez-Pavon, Jacobo
Martinez-Soler, Ivan
Nunokawa, Hiroshi
author_sort Coloma, Pilar
collection CERN
description We revisit neutrino oscillations in matter considering the open quantum system framework, which allows to introduce possible decoherence effects generated by New Physics in a phenomenological manner. We assume that the decoherence parameters $\gamma _{ij}$ may depend on the neutrino energy, as $\gamma _{ij}=\gamma _{ij}^{0}(E/\text {GeV})^n\ (n = 0,\pm 1,\pm 2) $ . The case of non-uniform matter is studied in detail and, in particular, we develop a consistent formalism to study the non-adiabatic case dividing the matter profile into an arbitrary number of layers of constant densities. This formalism is then applied to explore the sensitivity of IceCube and DeepCore to this type of effects. Our study is the first atmospheric neutrino analysis where a consistent treatment of the matter effects in the three-neutrino case is performed in presence of decoherence. We show that matter effects are indeed extremely relevant in this context. We find that IceCube is able to considerably improve over current bounds in the solar sector ( $\gamma _{21}$ ) and in the atmospheric sector ( $\gamma _{31}$ and $\gamma _{32}$ ) for $n=0,1,2$ and, in particular, by several orders of magnitude (between 3 and 9) for the $n=1,2$ cases. For $n=0$ we find $\gamma _{32},\gamma _{31}< 4.0\times 10^{-24}\, (1.3\times 10^{-24})\ \hbox {GeV}$ and $\gamma _{21}<1.3\times 10^{-24}\, (4.1\times 10^{-24})\ \hbox {GeV}$ at the 95% CL, for normal (inverted) mass ordering.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
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spelling cern-23114102021-11-13T11:26:15Zdoi:10.1140/epjc/s10052-018-6092-6http://cds.cern.ch/record/2311410engColoma, PilarLopez-Pavon, JacoboMartinez-Soler, IvanNunokawa, HiroshiDecoherence in neutrino propagation through matter, and bounds from IceCube/DeepCorehep-phParticle Physics - Phenomenologyhep-exParticle Physics - ExperimentWe revisit neutrino oscillations in matter considering the open quantum system framework, which allows to introduce possible decoherence effects generated by New Physics in a phenomenological manner. We assume that the decoherence parameters $\gamma _{ij}$ may depend on the neutrino energy, as $\gamma _{ij}=\gamma _{ij}^{0}(E/\text {GeV})^n\ (n = 0,\pm 1,\pm 2) $ . The case of non-uniform matter is studied in detail and, in particular, we develop a consistent formalism to study the non-adiabatic case dividing the matter profile into an arbitrary number of layers of constant densities. This formalism is then applied to explore the sensitivity of IceCube and DeepCore to this type of effects. Our study is the first atmospheric neutrino analysis where a consistent treatment of the matter effects in the three-neutrino case is performed in presence of decoherence. We show that matter effects are indeed extremely relevant in this context. We find that IceCube is able to considerably improve over current bounds in the solar sector ( $\gamma _{21}$ ) and in the atmospheric sector ( $\gamma _{31}$ and $\gamma _{32}$ ) for $n=0,1,2$ and, in particular, by several orders of magnitude (between 3 and 9) for the $n=1,2$ cases. For $n=0$ we find $\gamma _{32},\gamma _{31}< 4.0\times 10^{-24}\, (1.3\times 10^{-24})\ \hbox {GeV}$ and $\gamma _{21}<1.3\times 10^{-24}\, (4.1\times 10^{-24})\ \hbox {GeV}$ at the 95% CL, for normal (inverted) mass ordering.We revisit neutrino oscillations in matter considering the open quantum system framework which allows to introduce possible decoherence effects generated by New Physics in a phenomenological manner. We assume that the decoherence parameters $\gamma_{ij}$ may depend on the neutrino energy, as $\gamma_{ij}=\gamma_{ij}^{0}(E/\text{GeV})^n$ $(n = 0,\pm1,\pm2) $. The case of non-uniform matter is studied in detail, both within the adiabatic approximation and in the more general non-adiabatic case. In particular, we develop a consistent formalism to study the non-adiabatic case dividing the matter profile into an arbitrary number of layers of constant densities. This formalism is then applied to explore the sensitivity of IceCube and DeepCore to this type of effects. Our study is the first atmospheric neutrino analysis where a consistent treatment of the matter effects in the three-neutrino case is performed in presence of decoherence. We show that matter effects are indeed extremely relevant in this context. We find that IceCube is able to considerably improve over current bounds in the solar sector ($\gamma_{21}$) and in the atmospheric sector ($\gamma_{31}$ and $\gamma_{32}$) for $n=0,1,2$ and, in particular, by several orders of magnitude (between 3 and 9) for the $n=1,2$ cases. For $n=0$ we find $\gamma_{32},\gamma_{31}&lt; 4.0\cdot10^{-24} (1.3\cdot10^{-24})$ GeV and $\gamma_{21}&lt;1.3\cdot10^{-24} (4.1\cdot10^{-24})$ GeV, for normal (inverted) mass ordering.arXiv:1803.04438CERN-TH-2018-041IFT-UAM/CSIC-18-022FERMILAB-PUB-18-067-Toai:cds.cern.ch:23114102018-03-12
spellingShingle hep-ph
Particle Physics - Phenomenology
hep-ex
Particle Physics - Experiment
Coloma, Pilar
Lopez-Pavon, Jacobo
Martinez-Soler, Ivan
Nunokawa, Hiroshi
Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title_full Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title_fullStr Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title_full_unstemmed Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title_short Decoherence in neutrino propagation through matter, and bounds from IceCube/DeepCore
title_sort decoherence in neutrino propagation through matter, and bounds from icecube/deepcore
topic hep-ph
Particle Physics - Phenomenology
hep-ex
Particle Physics - Experiment
url https://dx.doi.org/10.1140/epjc/s10052-018-6092-6
http://cds.cern.ch/record/2311410
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AT nunokawahiroshi decoherenceinneutrinopropagationthroughmatterandboundsfromicecubedeepcore