Trapped electrons and ions as particle detectors
- URL: http://arxiv.org/abs/2104.05737v2
- Date: Thu, 5 Aug 2021 16:27:27 GMT
- Title: Trapped electrons and ions as particle detectors
- Authors: Daniel Carney, Hartmut H\"affner, David C. Moore, Jacob M. Taylor
- Abstract summary: Current devices can be used to provide competitive sensitivity to models where ambient dark matter particles carry small electric millicharges.
We show that current devices can be used to provide competitive sensitivity to models where ambient dark matter particles carry small electric millicharges.
Our calculations may also be useful in the characterization of noise in quantum computers coming from backgrounds of charged particles.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Electrons and ions trapped with electromagnetic fields have long served as
important high-precision metrological instruments, and more recently have also
been proposed as a platform for quantum information processing. Here we point
out that these systems can also be used as highly sensitive detectors of
passing charged particles, due to the combination of their extreme
charge-to-mass ratio and low-noise quantum readout and control. In particular,
these systems can be used to detect energy depositions many orders of magnitude
below typical ionization scales. As illustrations, we suggest some applications
in particle physics. We outline a non-destructive time-of-flight measurement
capable of sub-eV energy resolution for slowly moving, collimated particles. We
also show that current devices can be used to provide competitive sensitivity
to models where ambient dark matter particles carry small electric millicharges
$\ll e$. Our calculations may also be useful in the characterization of noise
in quantum computers coming from backgrounds of charged particles.
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