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Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments.

Publication ,  Journal Article
Lenardo, BG; Xu, J; Pereverzev, S; Akindele, OA; Naim, D; Kingston, J; Bernstein, A; Kazkaz, K; Tripathi, M; Awe, C; Li, L; Runge, J; An, P ...
Published in: Physical review letters
December 2019

Dual-phase xenon detectors lead the search for keV-scale nuclear recoil signals expected from the scattering of weakly interacting massive particle (WIMP) dark matter, and can potentially be used to study the coherent nuclear scattering of MeV-scale neutrinos. New capabilities of such experiments can be enabled by extending their nuclear recoil searches down to the lowest measurable energy. The response of the liquid xenon target medium to nuclear recoils, however, is not well characterized below a few keV, leading to large uncertainties in projected sensitivities. In this work, we report a new measurement of ionization signals from nuclear recoils in liquid xenon down to the lowest energy reported to date. At 0.3 keV, we find that the average recoil produces approximately one ionization electron; this is the first measurement of nuclear recoil signals at the single-ionization-electron level, approaching the physical limit of liquid xenon ionization detectors. We discuss the implications of these measurements on the physics reach of xenon detectors for nuclear-recoil-based WIMP dark matter searches and the detection of coherent elastic neutrino-nucleus scattering.

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Published In

Physical review letters

DOI

EISSN

1079-7114

ISSN

0031-9007

Publication Date

December 2019

Volume

123

Issue

23

Start / End Page

231106

Related Subject Headings

  • General Physics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences
 

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Lenardo, B. G., Xu, J., Pereverzev, S., Akindele, O. A., Naim, D., Kingston, J., … Barbeau, P. S. (2019). Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments. Physical Review Letters, 123(23), 231106. https://doi.org/10.1103/physrevlett.123.231106
Lenardo, B. G., J. Xu, S. Pereverzev, O. A. Akindele, D. Naim, J. Kingston, A. Bernstein, et al. “Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments.Physical Review Letters 123, no. 23 (December 2019): 231106. https://doi.org/10.1103/physrevlett.123.231106.
Lenardo BG, Xu J, Pereverzev S, Akindele OA, Naim D, Kingston J, et al. Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments. Physical review letters. 2019 Dec;123(23):231106.
Lenardo, B. G., et al. “Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments.Physical Review Letters, vol. 123, no. 23, Dec. 2019, p. 231106. Epmc, doi:10.1103/physrevlett.123.231106.
Lenardo BG, Xu J, Pereverzev S, Akindele OA, Naim D, Kingston J, Bernstein A, Kazkaz K, Tripathi M, Awe C, Li L, Runge J, Hedges S, An P, Barbeau PS. Low-Energy Physics Reach of Xenon Detectors for Nuclear-Recoil-Based Dark Matter and Neutrino Experiments. Physical review letters. 2019 Dec;123(23):231106.

Published In

Physical review letters

DOI

EISSN

1079-7114

ISSN

0031-9007

Publication Date

December 2019

Volume

123

Issue

23

Start / End Page

231106

Related Subject Headings

  • General Physics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences