IceCube Upgrade status and perspectives
astro-ph.IM, astro-ph.HE
Submitted: 2026-09-21
Updated: 2026-09-21
Comments: Presented at the 14th Cosmic-Ray International Studies and Multi-messenger Astroparticle Conference (CRIS-MAC 2026)
License: http://creativecommons.org/licenses/by/4.0/
The gist: The IceCube Neutrino Observatory instruments one cubic kilometer of deep-glacial ice between 1450 m and 2450 m below the surface at the geographic South Pole to detect neutrinos via Cherenkov
Terminology
Abstract
The IceCube Neutrino Observatory instruments one cubic kilometer of deep-glacial ice between 1450 m and 2450 m below the surface at the geographic South Pole to detect neutrinos via Cherenkov radiation of relativistic charged particles produced in their interactions. This detector is responsible for a number of key observations in neutrino astrophysics, which include the discovery of a high-energy astrophysical neutrino flux and, more recently, the galactic plane. During the austral summer of 2025/26, five new strings equipped with new photosensor designs were deployed as a dense infill in the middle of the existing detector. The science goals of this detector are twofold: Firstly, given the higher photocathode density, an improved atmospheric neutrino event selection and reconstruction at a few GeV can be achieved for enhanced capabilities to study neutrino oscillations. Secondly, novel calibration devices will improve the knowledge of the optical properties of the glacial ice and the detector response. These new calibration results will be applied to archival IceCube data, improving angular and spatial resolution of all detected astrophysical neutrino events. The IceCube Upgrade also serves as a first step towards the next-generation neutrino telescope at the South Pole, called IceCube-Gen2.
Sources
- High-energy neutrino emission from the Milky Way
- The Design and Performance of IceCube DeepCore
- The IceCube Upgrade -- Design and Science Goals
- Astrophysical Sensitivity Projections for the IceCube Upgrade
- Sensitivity Projections for Low-Mass Dark Matter Annihilation with the IceCube Upgrade
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