A New WIMP Population in the Solar System and New Signals for Dark-Matter Detectors
arXiv:astro-ph/9807099 · doi:10.1103/PhysRevD.59.063509
Abstract
We describe in detail how perturbations due to the planets can cause a sub-population of WIMPs captured by scattering in surface layers of the Sun to evolve to have orbits which no longer intersect the Sun. We argue that such WIMPs, if their orbit has a semi-major axis less than 1/2 of Jupiter's, can persist in the solar system for cosmological timescales. This leads to a new, previously unanticipated WIMP population intersecting the Earth's orbit. The WIMP-nucleon cross sections required for this population to be significant are precisely those in the range predicted for SUSY dark matter, lying near the present limits obtained by direct underground dark matter searches using cyrogenic detectors. Thus, if a WIMP signal is observed in the next generation of detectors, a potentially measurable signal due to this new population must exist. This signal, lying in the keV range for Germanium detectors, would be complementary to that of galactic halo WIMPs. A comparison of event rates, anisotropies, and annual modulations would not only yield additional confirmation that any claimed signal is indeed WIMP-based, but would also allow one to gain information on the nature of the underlying dark matter model.
Revtex, 37 pages including 6 figures, accepted by Phys. Rev D. (version to be published, including changes made in response to referees reports)
References in corpus (1)
Cited by in corpus (34)
- DarkSUSY: Computing Supersymmetric Dark Matter Properties Numerically
- Search for Dark Matter WIMPs using Upward Through-going Muons in Super-Kamiokande
- A Next-Generation Liquid Xenon Observatory for Dark Matter and Neutrino Physics
- Extending the DAMA annual-modulation region by inclusion of the uncertainties in the astrophysical velocities
- Dark matter in the Sun: scattering off electrons vs nucleons
- White Paper on New Opportunities at the Next-Generation Neutrino Experiments (Part 1: BSM Neutrino Physics and Dark Matter)
- Indirect signals from light neutralinos in supersymmetric models without gaugino mass unification
- Dark matter in the solar system I: The distribution function of WIMPs at the Earth from solar capture
- Indirect detection of light neutralino dark matter in the NMSSM
- Dark Matter Disc Enhanced Neutrino Fluxes from the Sun and Earth
- Dark matter in the solar system III: The distribution function of WIMPs at the Earth from gravitational capture
- Phase-space distribution of unbound dark matter near the Sun
- Can the flyby anomaly be attributed to earth-bound dark matter?
- Probing Light Dark Matter via Evaporation from the Sun
- Further investigation of a relic neutralino as a possible origin of an annual-modulation effect in WIMP direct search
- Dark Photons from the Center of the Earth: Smoking-Gun Signals of Dark Matter
- Decoherence as a way to measure extremely soft collisions with dark matter
- Can Heavy WIMPs Be Captured by the Earth?
- WIMP diffusion in the solar system including solar WIMP-nucleon scattering
- Dark Photons in the Solar Basin
- Probing Dark Matter Dynamics via Earthborn Neutrinos at IceCube
- Muon Flux Limits for Majorana Dark Matter Particles
- Accurate calculations of the WIMP halo around the Sun and prospects for its gamma-ray detection
- Implications of a solar-system population of massive 4th generation neutrinos for underground searches of monochromatic neutrino-annihilation signals
- Thermalization time scales for WIMP capture by the Sun in effective theories
- Orbital perturbations due to massive rings
- Local dark matter searches with LISA
- DarkCapPy: Dark Matter Capture and Annihilation
- New Spectral Features from Bound Dark Matter
- Ultra cold neutron trap as a tool to search for dark matter with long-range radius of forces
- Direct Detection of Dark Matter Bound to the Earth
- Orbital Dynamics of the Solar Basin
- Direct detection signatures of a primordial Solar dark matter halo
- Signatures of supermassive charged gravitinos in liquid scintillator detectors