High-Energy Neutrinos From Dark Matter Particle Self-Capture Within the Sun
Andrew R. Zentner (University of Pittsburgh)

TL;DR
This paper explores how dark matter self-interactions can significantly enhance high-energy neutrino fluxes from the Sun, breaking previous correlations with terrestrial signals and opening new detection possibilities.
Contribution
It introduces the impact of dark matter self-capture on neutrino flux predictions, revealing potential large enhancements and implications for indirect detection.
Findings
Self-interactions can increase neutrino flux by tens to hundreds of percent.
Large enhancements occur when dark matter annihilation cross section is small.
Self-capture effects break the link between solar and terrestrial neutrino signals.
Abstract
A potential flux of high-energy neutrinos from the annihilation of dark matter particles trapped within the Sun has been exploited to place indirect limits on particle dark matter. In most models, the dark matter interacts weakly, but the possibility of a dark matter particle with a large cross section for elastic scattering with itself has been proposed in several contexts. I study the consequences of such dark matter self-interactions for the high-energy neutrino flux from annihilation within the Sun. The self-interaction may allow dark matter in the halo to be captured within the Sun by scattering off of previously-captured dark matter within the Sun. This effect is not negligible in acceptable and accessible regions of parameter space. Enhancements in the predicted high-energy neutrino flux from the Sun of tens to hundreds of percent can be realized in broad regions of parameter…
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