Single Phonon Detection for Dark Matter via Quantum Evaporation and
Sensing of $^3$Helium
- URL: http://arxiv.org/abs/2201.00738v3
- Date: Tue, 7 Feb 2023 00:38:44 GMT
- Title: Single Phonon Detection for Dark Matter via Quantum Evaporation and
Sensing of $^3$Helium
- Authors: S. A. Lyon (1), Kyle Castoria (1), Ethan Kleinbaum (1), Zhihao Qin
(2), Arun Persaud (2), Thomas Schenkel (2), Kathryn Zurek (3) ((1) Princeton
University, (2) Lawrence Berkeley National Lab, (3) California Institute of
Technology)
- Abstract summary: We propose an approach based on phonon-assisted quantum evaporation combined with quantum sensors for detection of desorption events via tracking of spin coherence.
The intent of our proposed dark matter sensors is to extend the parameter space to energy transfers in rare interactions to as low as a few meV for detection of dark matter particles in the keV/c$2$ mass range.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Dark matter is five times more abundant than ordinary visible matter in our
Universe. While laboratory searches hunting for dark matter have traditionally
focused on the electroweak scale, theories of low mass hidden sectors motivate
new detection techniques. Extending these searches to lower mass ranges, well
below 1 GeV/c$^2$, poses new challenges as rare interactions with standard
model matter transfer progressively less energy to electrons and nuclei in
detectors. Here, we propose an approach based on phonon-assisted quantum
evaporation combined with quantum sensors for detection of desorption events
via tracking of spin coherence. The intent of our proposed dark matter sensors
is to extend the parameter space to energy transfers in rare interactions to as
low as a few meV for detection of dark matter particles in the keV/c$^2$ mass
range.
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