Published September 2022
| Version public
Journal Article
Novel Quantum Sensors for Light Dark Matter and Neutrino Detection
Abstract
The fields of light dark matter and neutrino physics offer compelling signals at recoil energies of eV to even meV, well below the ≳ keV thresholds of many techniques currently employed in these fields. Sensing of such small energies can benefit from the emergence of so-called quantum sensors, which employ fundamentally quantum mechanical phenomena to transduce energy depositions into electrical signals. This review focuses on quantum sensors under development that will enhance and extend the search for "particle-like" interactions of dark matter or enable new measurements of neutrino properties in the coming years.
Additional Information
The authors acknowledge an uncountable number of conversations with experts in the topics covered in this review over the years, with special thanks to (in alphabetical order) Rana Adhikari, Blas Cabrera, Aaron Chou, Peter Day, Jiansong Gao, Kent Irwin, Nikita Klimovich, Noah Kurinsky, Konrad Lehnert, Omid Noroozian, Matt Pyle, Karthik Ramanathan, Bernard Sadoulet, Tanner Trickle, Kevin (Zhengkang) Zhang, Jonas Zmuidzinas, and Kathryn Zurek. They acknowledge support from the US Department of Energy, NASA, the National Science Foundation, and their home institutions.Additional details
Identifiers
- Eprint ID
- 117479
- Resolver ID
- CaltechAUTHORS:20221017-15547800.44
Funding
- Department of Energy (DOE)
- NASA
- NSF
Dates
- Created
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2022-10-25Created from EPrint's datestamp field
- Updated
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2022-10-25Created from EPrint's last_modified field
Caltech Custom Metadata
- Caltech groups
- Astronomy Department