Dark matter indirect signals with long-lived mediators
arXiv:1706.08543 · doi:10.1088/1475-7516/2017/11/023
Abstract
Dark matter particles could annihilate into light and metastable mediators subsequently decaying far away from where they are produced. In this scenario, the indirect signatures of dark matter are altered with respect to the conventional situation where standard model particles are directly injected where annihilation happens. We explore here this new phenomenology for which we devise the tools. We calculate the effective dark matter distribution resulting from the smearing by mediator propagation. We derive the fluxes of mediators and their decay particles. We study how the -factor, which naturally appears in the calculation of the dark matter induced gamma ray signal, is modified in the presence of mediators. We also derive the anisotropy which the cosmic ray positron flux exhibits in this scenario. We finally comment upon a recent proposal based on long-lived mediators where the effective dark matter density at the Earth is increased such as to explain the cosmic ray positron anomaly. We conclude that this scenario is barely tenable as regards the very dense dark matter spike which it requires at the Galactic center. The associated positron anisotropy is very small and undetectable, except at high energies where it reaches a level of order to .
To match the published version
References in corpus (10)
- Observation of an anomalous positron abundance in the cosmic radiation
- A Theory of Dark Matter
- (In)direct Detection of Boosted Dark Matter
- Dark matter constraints from box-shaped gamma-ray features
- A new look at the cosmic ray positron fraction
- Non-universal BBN bounds on electromagnetically decaying particles
- Search for Cosmic-Ray Electron and Positron Anisotropies with Seven Years of Fermi Large Area Telescope Data
- H.E.S.S. limits on line-like dark matter signatures in the 100 GeV to 2 TeV energy range close to the Galactic Centre
- Adiabatic contraction revisited: implications for primordial black holes
- Gamma Ray Spectra from Dark Matter Annihilation and Decay