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Thermodynamic stability of xenon-doped liquid argon detectors

Publication ,  Journal Article
Bernard, EP; Mizrachi, E; Kingston, J; Xu, J; Pereverzev, SV; Pershing, T; Smith, R; Prior, CG; Bowden, NS; Bernstein, A; Hall, CR; Pantic, E ...
Published in: Physical Review C
October 1, 2023

Liquid argon detectors are employed in a wide variety of nuclear and particle physics experiments. The addition of small quantities of xenon to argon modifies its scintillation, ionization, and electroluminescence properties and can improve its performance as a detection medium. However, a liquid argon-xenon mixture can develop instabilities, especially in systems that require phase transitions or that utilize high xenon concentrations. In this work, we analyze the causes of these instabilities and describe a small (liter-scale) apparatus with a unique cryogenic circuit specifically designed to handle argon-xenon mixtures. The system is capable of condensing argon gas mixed with O(1%) xenon by volume and maintains a stable liquid mixture near the xenon saturation limit while actively circulating it in the gas phase. We also demonstrate control over instabilities that develop when the detector condition is allowed to deviate from optimized settings. This progress enables future liquid argon detectors to benefit from the effects of high concentrations of xenon doping, such as more efficient detection of low-energy ionization signals. This work also develops tools to study and mitigate instabilities in large argon detectors that use low concentration xenon doping.

Duke Scholars

Published In

Physical Review C

DOI

EISSN

2469-9993

ISSN

2469-9985

Publication Date

October 1, 2023

Volume

108

Issue

4

Related Subject Headings

  • 5106 Nuclear and plasma physics
 

Citation

APA
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MLA
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Bernard, E. P., Mizrachi, E., Kingston, J., Xu, J., Pereverzev, S. V., Pershing, T., … Barbeau, P. S. (2023). Thermodynamic stability of xenon-doped liquid argon detectors. Physical Review C, 108(4). https://doi.org/10.1103/PhysRevC.108.045503
Bernard, E. P., E. Mizrachi, J. Kingston, J. Xu, S. V. Pereverzev, T. Pershing, R. Smith, et al. “Thermodynamic stability of xenon-doped liquid argon detectors.” Physical Review C 108, no. 4 (October 1, 2023). https://doi.org/10.1103/PhysRevC.108.045503.
Bernard EP, Mizrachi E, Kingston J, Xu J, Pereverzev SV, Pershing T, et al. Thermodynamic stability of xenon-doped liquid argon detectors. Physical Review C. 2023 Oct 1;108(4).
Bernard, E. P., et al. “Thermodynamic stability of xenon-doped liquid argon detectors.” Physical Review C, vol. 108, no. 4, Oct. 2023. Scopus, doi:10.1103/PhysRevC.108.045503.
Bernard EP, Mizrachi E, Kingston J, Xu J, Pereverzev SV, Pershing T, Smith R, Prior CG, Bowden NS, Bernstein A, Hall CR, Pantic E, Tripathi M, Mckinsey DN, Barbeau PS. Thermodynamic stability of xenon-doped liquid argon detectors. Physical Review C. 2023 Oct 1;108(4).

Published In

Physical Review C

DOI

EISSN

2469-9993

ISSN

2469-9985

Publication Date

October 1, 2023

Volume

108

Issue

4

Related Subject Headings

  • 5106 Nuclear and plasma physics