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Search for quantum gravity using astrophysical neutrino flavour with IceCube
Uppsala University, Disciplinary Domain of Science and Technology, Physics, Department of Physics and Astronomy, High Energy Physics. (The IceCube Collaboration)ORCID iD: 0000-0001-8588-7306
Uppsala University, Disciplinary Domain of Science and Technology, Physics, Department of Physics and Astronomy, High Energy Physics. (The IceCube Collaboration)ORCID iD: 0000-0003-1276-676x
Uppsala University, Disciplinary Domain of Science and Technology, Physics, Department of Physics and Astronomy, High Energy Physics. (The IceCube Collaboration)ORCID iD: 0000-0001-5998-2553
Uppsala University, Disciplinary Domain of Science and Technology, Physics, Department of Physics and Astronomy, High Energy Physics. (The IceCube Collaboration)ORCID iD: 0000-0001-7751-4489
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Number of Authors: 3802022 (English)In: Nature Physics, ISSN 1745-2473, E-ISSN 1745-2481, Vol. 18, no 11, p. 1287-1292Article in journal (Refereed) Published
Abstract [en]

Along their long propagation from production to detection, neutrinos undergo flavour conversions that convert their types or flavours1,2. High-energy astrophysical neutrinos propagate unperturbed over a billion light years in vacuum3 and are sensitive to small effects caused by new physics. Effects of quantum gravity4 are expected to appear at the Planck energy scale. Such a high-energy universe would have existed only immediately after the Big Bang and is inaccessible by human technologies. On the other hand, quantum gravity effects may exist in our low-energy vacuum5,6,7,8, but are suppressed by inverse powers of the Planck energy. Measuring the coupling of particles to such small effects is difficult via kinematic observables, but could be observable through flavour conversions. Here we report a search with the IceCube Neutrino Observatory, using astrophysical neutrino flavours9,10 to search for new space–time structure. We did not find any evidence of anomalous flavour conversion in the IceCube astrophysical neutrino flavour data. We apply the most stringent limits of any known technologies, down to 10−42 GeV−2 with Bayes factor greater than 10 on the dimension-six operators that parameterize the space–time defects. We thus unambiguously reach the parameter space of quantum-gravity-motivated physics.

Place, publisher, year, edition, pages
Springer Nature, 2022. Vol. 18, no 11, p. 1287-1292
National Category
Astronomy, Astrophysics and Cosmology Subatomic Physics
Identifiers
URN: urn:nbn:se:uu:diva-496131DOI: 10.1038/s41567-022-01762-1ISI: 000871319900001OAI: oai:DiVA.org:uu-496131DiVA, id: diva2:1735433
Funder
German Research Foundation (DFG)Swedish Research CouncilSwedish National Infrastructure for Computing (SNIC)Knut and Alice Wallenberg FoundationSwedish Polar Research Secretariat
Note

O. Botner, A. Burgman, C. Glaser, A. Hallgren, E. O’Sullivan, C. Pérez de los Heros, A. Sharma och N. Valtonen-Mattila ingår i gruppen The IceCube Collaboration.

For complete list of contributors see http://dx.doi.org/10.1038/s41567-022-01762-1

Available from: 2023-02-08 Created: 2023-02-08 Last updated: 2023-02-08Bibliographically approved

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Botner, OlgaBurgman, AlexanderGlaser, ChristianHallgren, AllanO'Sullivan, ErinPérez de los Heros, CarlosSharma, AnkurValtonen-Mattila, Nora

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Botner, OlgaBurgman, AlexanderGlaser, ChristianHallgren, AllanO'Sullivan, ErinPérez de los Heros, CarlosSharma, AnkurValtonen-Mattila, Nora
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