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Dark matter annihilations and decays after the AMS-02 positron measurements

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arxiv 1309.2570 v2 pith:4UUDQTKX submitted 2013-09-10 hep-ph astro-ph.CO

classification hep-phastro-ph.CO
keywords positrondarkmatterlimitsmeasurementsams-02annihilationcosmic
verification ladder T0 review T1 audit T2 compute T3 formal
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The AMS-02 collaboration has recently presented measurements of excellent quality of the cosmic electron and positron fluxes as well as the positron fraction. We use the measurements of the positron flux to derive, for the first time, limits on the dark matter annihilation cross section and lifetime for various final states. Working under the well-motivated assumption that a background positron flux exists from spallations of cosmic rays with the interstellar medium and from astrophysical sources, we find strong limits on the dark matter properties which are competitive, although slightly weaker, than those derived from the positron fraction. Specifically, for dark matter particles annihilating only into e+ e- or into mu+ mu-, our limits on the annihilation cross section are stronger than the thermal value when the dark matter mass is smaller than 100 GeV or 60 GeV, respectively.

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  1. Novel Signatures of Matter-Induced Dark Matter Decay in Large-Volume Neutrino Telescopes

    hep-ph 2026-08 conditional novelty 6.0 of 10

    Excited dark matter that is stable in vacuum can decay near Earth into two fast muons, giving neutrino telescopes a nearly background-free signal.

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