Novel Signatures of Matter-Induced Dark Matter Decay in Large-Volume Neutrino Telescopes
Hooman Davoudiasl, Dan Hooper, Samyak Jain
hep-ph, astro-ph.CO, astro-ph.HE
Submitted: 2026-08-05
License: http://creativecommons.org/licenses/by/4.0/
The gist: Large-volume neutrino telescopes offer a unique opportunity to search for decaying dark matter through events containing a pair of energetic, highly non-collimated muon tracks emerging from a common
Terminology
Abstract
Large-volume neutrino telescopes offer a unique opportunity to search for decaying dark matter through events containing a pair of energetic, highly non-collimated muon tracks emerging from a common vertex. Such events would have negligible Standard Model backgrounds and would constitute a striking signature of new physics. Conventional dark matter annihilation or decay, however, is too strongly constrained to produce an observable rate of such events. We therefore consider scenarios in which an excited dark matter state is extremely long-lived in vacuum but decays much more rapidly in the presence of ordinary matter. We present two realizations of this mechanism. In the first, a long-range scalar field sourced by ordinary matter modifies the dark-sector mass spectrum, kinematically opening the decay chi 2 to chi 1 Z' near the Earth while leaving it forbidden in vacuum. In the second, the scalar background induces kinetic mixing between a heavy Z' and the photon, greatly enhancing the three-body decay chi 2 to chi 1 mu+ mu- in matter-rich environments. We calculate the resulting distributions of muon energies and opening angles and show that viable regions of parameter space can yield observable event rates in IceCube, KM3NeT, and other large-volume neutrino telescopes while remaining consistent with existing constraints. We also briefly consider the sensitivity of IceCube to multi-muon events produced by the decays of cosmologically long-lived charged particles with masses 1 TeV.
Sources
- Search for GeV-scale Dark Matter Annihilation in the Sun with IceCube DeepCore
- Search for neutrino lines from dark matter annihilation and decay with IceCube
- Search for Dark Matter Annihilation in the Galactic Center with IceCube-79
- Search for Neutrinos from Dark Matter Self-Annihilations in the center of the Milky Way with 3 years of IceCube/DeepCore
- Combined search for neutrinos from dark matter self-annihilation in the Galactic Centre with ANTARES and IceCube
- Search for dark matter towards the Galactic Centre with 11 years of ANTARES data
- First Searches for Dark Matter with the KM3NeT Neutrino Telescopes
- Search for GeV-scale Dark Matter from the Galactic Center with IceCube-DeepCore
- Sensitivity Projections for Low-Mass Dark Matter Annihilation with the IceCube Upgrade
- Searching for Sub-GeV Dark Matter in the Galactic Centre using Hyper-Kamiokande
- Dark Matter Search Results from 4.2 Tonne-Years of Exposure of the LUX-ZEPLIN (LZ) Experiment
- WIMP Dark Matter Search using a 3.1 Tonne-Year Exposure of the XENONnT Experiment
- Dark Matter Search Results from 1.54 Tonne$\cdot$Year Exposure of PandaX-4T
- First results from the CRESST-III low-mass dark matter program
- Dark Matter Search Results from the Complete Exposure of the PICO-60 C$_3$F$_8$ Bubble Chamber
- Planck 2018 results. VI. Cosmological parameters
- Cosmic-Ray Positrons Strongly Constrain Leptophilic Dark Matter
- Constraints on Decaying Dark Matter from the Isotropic Gamma-Ray Background
- Legacy analysis of Milky Way dwarf spheroidal satellite galaxies: an update
- Antiproton Bounds on Dark Matter Annihilation from a Combined Analysis Using the DRAGON2 Code
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