Measurement of the directional sensitivity of DMTPC detectors
Abstract
The Dark Matter Time Projection Chamber (DMTPC) is a direction-sensitive detector designed to measure the direction of recoiling F and C nuclei in low-pressure CF gas using optical and charge readout systems. In this paper, we employ measurements from two DMTPC detectors, with operating pressures of 30-60 torr, to develop and validate a model of the directional response and performance of such detectors as a function of recoil energy. Using our model as a benchmark, we formulate the necessary specifications for a scalable directional detector with sensitivity comparable to that of current-generation counting (non-directional) experiments, which measure only recoil energy. Assuming the performance of existing DMTPC detectors, as well as current limits on the spin-dependent WIMP-nucleus cross section, we find that a 10-20 kg scale direction-sensitive detector is capable of correlating the measured direction of nuclear recoils with the predicted direction of incident dark matter particles and providing decisive (3) confirmation that a candidate signal from a non-directional experiment was indeed induced by elastic scattering of dark matter particles off of target nuclei.
Keywords
Cite
@article{arxiv.1705.05965,
title = {Measurement of the directional sensitivity of DMTPC detectors},
author = {Cosmin Deaconu and Michael Leyton and Ross Corliss and Gabriela Druitt and Richard Eggleston and Natalia Guerrero and Shawn Henderson and Jeremy Lopez and Jocelyn Monroe and Peter Fisher},
journal= {arXiv preprint arXiv:1705.05965},
year = {2017}
}
Comments
13 pages, 10 figures. Accepted for publication in Phys. Rev. D. Added color figures, switched to more compact layout, and fixed some references