Prospects for dark matter detection with inelastic transitions of xenon
arXiv:1512.00460 · doi:10.1088/1475-7516/2016/05/033
Abstract
Dark matter can scatter and excite a nucleus to a low-lying excitation in a direct detection experiment. This signature is distinct from the canonical elastic scattering signal because the inelastic signal also contains the energy deposited from the subsequent prompt de-excitation of the nucleus. A measurement of the elastic and inelastic signal will allow a single experiment to distinguish between a spin-independent and spin-dependent interaction. For the first time, we characterise the inelastic signal for two-phase xenon detectors in which dark matter inelastically scatters off the Xe-129 or Xe-131 isotope. We do this by implementing a realistic simulation of a typical tonne-scale two-phase xenon detector and by carefully estimating the relevant background signals. With our detector simulation, we explore whether the inelastic signal from the axial-vector interaction is detectable with upcoming tonne-scale detectors. We find that two-phase detectors allow for some discrimination between signal and background so that it is possible to detect dark matter that inelastically scatters off either the Xe-129 or Xe-131 isotope for dark matter particles that are heavier than approximately 100 GeV. If, after two years of data, the XENON1T search for elastic scattering nuclei finds no evidence for dark matter, the possibility of ever detecting an inelastic signal from the axial-vector interaction will be almost entirely excluded.
22 pages + 9 pages of appendices, 14 figures. v2: minor changes to match published version
References in corpus (24)
- Big-Bang Nucleosynthesis
- The EAGLE project: Simulating the evolution and assembly of galaxies and their environments
- The EAGLE simulations of galaxy formation: calibration of subgrid physics and model variations
- Dark Matter Results from 225 Live Days of XENON100 Data
- Phase space factors for double- decay
- Physics reach of the XENON1T dark matter experiment
- The Local Dark Matter Density
- Improved Limits on Scattering of Weakly Interacting Massive Particles from Reanalysis of 2013 LUX data
- The Large Underground Xenon (LUX) Experiment
- Dark Matter Search Results from the PICO-2L CF Bubble Chamber
- Liquid noble gas detectors for low energy particle physics
- The Astrophysical Uncertainties Of Dark Matter Direct Detection Experiments
- Characterising dark matter searches at colliders and direct detection experiments: Vector mediators
- Results on the Spin-Dependent Scattering of Weakly Interacting Massive Particles on Nucleons from the Run 3 Data of the LUX Experiment
- Improved limits on dark matter annihilation in the Sun with the 79-string IceCube detector and implications for supersymmetry
- Simulated Milky Way analogues: implications for dark matter direct searches
- Nuclear structure aspects of spin-independent WIMP scattering off xenon
- Observation of Anti-correlation between Scintillation and Ionization for MeV Gamma-Rays in Liquid Xenon
- Conceptual design and simulation of a water Cherenkov muon veto for the XENON1T experiment
- Prospects for direct detection of dark matter in an effective theory approach
- WIMP Dark Matter Direct-Detection Searches in Noble Gases
- On an unverified nuclear decay and its role in the DAMA experiment
- Quantifying the evidence for Dark Matter in CoGeNT data
- Surface roughness interpretation of 730 kg days CRESST-II results
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- A Next-Generation Liquid Xenon Observatory for Dark Matter and Neutrino Physics
- Probing sub-GeV Dark Matter with conventional detectors
- Directly detecting sub-GeV dark matter with electrons from nuclear scattering
- Supernova neutrino physics with xenon dark matter detectors: A timely perspective
- Analysis strategies for general spin-independent WIMP-nucleus scattering
- Nuclear structure factors for general spin-independent WIMP-nucleus scattering
- Dark Shards: velocity substructure from Gaia and direct searches for dark matter
- Search for WIMP Inelastic Scattering off Xenon Nuclei with XENON100
- Direct Detection Experiments at the Neutrino Dipole Portal Frontier
- Identifying WIMP dark matter from particle and astroparticle data
- No room to hide: implications of cosmic-ray upscattering for GeV-scale dark matter
- New constraints and discovery potential of sub-GeV dark matter with xenon detectors
- Search for inelastic scattering of WIMP dark matter in XENON1T
- Spin-dependent sub-GeV Inelastic Dark Matter-electron scattering and Migdal effect: (I). Velocity Independent Operator
- First Constraints on WIMP-Nucleon Effective Field Theory Couplings in an Extended Energy Region From LUX-ZEPLIN
- Pushing the frontier of WIMPy inelastic dark matter: journey to the end of the periodic table
- Opening the energy window on direct dark matter detection
- Discriminating WIMP-nucleus response functions in present and future XENON-like direct detection experiments
- EFT Interpretation of XENON1T Electron Recoil Excess: Neutrinos and Dark Matter
- Inelastic dark matter nucleus scattering
- TeV Scale Neutrino Mass Generation, Minimal Inelastic Dark Matter, and High Scale Leptogenesis
- Coherence in scattering of massive weakly interacting neutral particles off nuclei
- Nuclear physics insights for new-physics searches using nuclei: Neutrinoless decay and dark matter direct detection