Time-integrated directional detection of dark matter
arXiv:1708.02959 · doi:10.1103/PhysRevD.96.083011
Abstract
The analysis of signals in directional dark matter (DM) detectors typically assumes that the directions of nuclear recoils can be measured in the Galactic rest frame. However, this is not possible with all directional detection technologies. In nuclear emulsions, for example, the recoil events must be detected and measured after the exposure time of the experiment. Unless the entire detector is mounted and rotated with the sidereal day, the recoils cannot be reoriented in the Galactic rest frame. We examine the effect of this `time integration' on the primary goals of directional detection, namely: (1) confirming that the recoils are anisotropic; (2) measuring the median recoil direction to confirm their Galactic origin; and (3) probing below the neutrino floor. We show that after time integration the DM recoil distribution retains a preferred direction and is distinct from that of Solar neutrino-induced recoils. Many of the advantages of directional detection are therefore preserved and it is not crucial to mount and rotate the detector. Rejecting isotropic backgrounds requires a factor of 2 more signal events compared with an experiment with event time information, whereas a factor of 1.5-3 more events are needed to measure a median direction in agreement with the expectation for DM. We also find that there is still effectively no neutrino floor in a time-integrated directional experiment. However to reach a cross section an order of magnitude below the floor, a factor of 8 larger exposure is required than with a conventional directional experiment. We also examine how the sensitivity is affected for detectors with only 2D recoil track readout, and/or no head-tail measurement. As for non-time-integrated experiments, 2D readout is not a major disadvantage, though a lack of head-tail sensitivity is.
15 pages, 11 figures. Version published in PRD
References in corpus (24)
- Results from a search for dark matter in the complete LUX exposure
- Observation of Coherent Elastic Neutrino-Nucleus Scattering
- Dark Matter Results from First 98.7-day Data of PandaX-II Experiment
- The Diffuse Supernova Neutrino Background
- Observation of a first candidate in the OPERA experiment in the CNGS beam
- Improvement of low energy atmospheric neutrino flux calculation using the JAM nuclear interaction model
- Complementarity of dark matter detectors in light of the neutrino background
- Neutrino Backgrounds to Dark Matter Searches
- Measurement of Scintillation and Ionization Yield and Scintillation Pulse Shape from Nuclear Recoils in Liquid Argon
- Nuclear structure aspects of spin-independent WIMP scattering off xenon
- Solar and Atmospheric Neutrinos: Background Sources for the Direct Dark Matter Searches
- Readout technologies for directional WIMP Dark Matter detection
- Directional Dark Matter Detection Beyond the Neutrino Bound
- Directional Detection of Dark Matter using Spectroscopy of Crystal Defects
- Markov Chain Monte Carlo analysis to constrain Dark Matter properties with directional detection
- Daily Modulation as a Smoking Gun of Dark Matter with Significant Stopping
- The median recoil direction as a WIMP directional detection signal
- Directional detection of dark matter streams
- Probing the Local Velocity Distribution of WIMP Dark Matter with Directional Detectors
- Measurement of the directional sensitivity of DMTPC detectors
- Reconstructing the three-dimensional local dark matter velocity distribution
- Comparing readout strategies to directly detect dark matter
- Dark Matter directional detection: comparison of the track direction determination
- Nuclear proton and neutron distributions in the detection of weak interacting massive particles
Cited by in corpus (3)
- Dependence of the WIMP Angular Kinetic-Energy Distribution on the Solar Galactic Orbital Velocity
- Some Thoughts on (the Incompleteness of) the (Double) Differential Event Rates for Elastic WIMP-Nucleus Scattering in (Directional) Direct Dark Matter Detection Physics
- The potential of directional neutrino detection to observe neutrino spin oscillations