4.5 Article

Signatures of muonic activation in the MAJORANA DEMONSTRATOR

Journal

PHYSICAL REVIEW C
Volume 105, Issue 1, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevC.105.014617

Keywords

-

Funding

  1. U.S. Department of Energy, Office of Science, Office of Nuclear Physics [DEAC02-05CH11231, DE-AC05-00OR22725, DE-AC05-76RL0130, DE-FG02-97ER41020, DEFG02-97ER41033, DE-FG02-97ER41041, DESC0012612, DE-SC0014445, DE-SC0018060, LANLEM77/LANLEM78]
  2. Particle Astrophysics Program of the National Science Foundation [MRI-0923142, PHY-1003399, PHY-1102292, PHY-1206314, PHY-1614611, PHY-1812409, PHY-1812356]
  3. Nuclear Physics Program of the National Science Foundation [MRI-0923142, PHY-1003399, PHY-1102292, PHY-1206314, PHY-1614611, PHY-1812409, PHY-1812356]
  4. Laboratory Directed Research & Development (LDRD) program at Lawrence Berkeley National Laboratory
  5. U.S. Department of Energy through the Los Alamos National Laboratory LDRD Program
  6. Pacific Northwest National Laboratory LDRD Program
  7. South Dakota Board of Regents Competitive Research Grant
  8. Russian Foundation for Basic Research [15-02-02919]
  9. Natural Sciences and Engineering Research Council of Canada [SAPIN-2017-00023]
  10. Canada Foundation for Innovation John R. Evans Leaders Fund
  11. U.S. Department of Energy (DOE) [DE-SC0014445, DE-SC0018060] Funding Source: U.S. Department of Energy (DOE)

Ask authors/readers for more resources

In this study, decay signatures of metastable germanium isotopes were searched using MAJORANA DEMONSTRATOR data. Contributions to the region of interest in energy and time were estimated and compared to measured data, showing good agreement. Different simulation frameworks were used to estimate the uncertainties of the predictions. These findings will contribute to future experimental designs and understanding of background.
Experiments searching for very rare processes such as neutrinoless double-beta decay require a detailed understanding of all sources of background. Signals from radioactive impurities present in construction and detector materials can be suppressed using a number of well-understood techniques. Background from in situ cosmogenic interactions can be reduced by siting an experiment deep underground. However, the next generation of such experiments have unprecedented sensitivity goals of 10(28) years half-life with background rates of 10(-5 )cts/(keV kg yr) in the region of interest. To achieve these goals, the remaining cosmogenic background must be well understood. In the work presented here, MAJORANA DEMONSTRATOR data are used to search for decay signatures of metastable germanium isotopes. Contributions to the region of interest in energy and time are estimated using simulations and compared to Demonstrator data. Correlated time-delayed signals are used to identify decay signatures of isotopes produced in the germanium detectors. A good agreement between expected and measured rate is found and different simulation frameworks are used to estimate the uncertainties of the predictions. The simulation campaign is then extended to characterize the background for the LEGEND experiment, a proposed tonne-scale effort searching for neutrinoless double-beta decay in Ge-76.

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