TY - JOUR
T1 - Characterization of a 4παβ(LS)-γ(HPGe) prototype system for low-background measurements
AU - Nissim, S.
AU - Brandis, M.
AU - Aviv, O.
AU - Arazi, L.
N1 - Funding Information: The authors thank Y. Mishnayot and I. Mor for the fruitful discussions and helpful inputs on the design of some of the system components. The authors also thank D. Vaknin and Z. Yungrais for their assistance in preparing the test samples. The authors deeply thank our collaborators from Lawrence Livermore National Laboratory and Los Alamos National Laboratory for their assistance in carrying out this research. Publisher Copyright: © 2023 Elsevier Ltd
PY - 2023/8/1
Y1 - 2023/8/1
N2 - A ground-level prototype system for low-background measurements was developed and tested. The system consists of a high-purity germanium (HPGe) detector used for detecting γ rays and coupled to a liquid scintillator (LS) used for detecting α and β particles. Both detectors are surrounded by shielding materials and anti-cosmic detectors (“veto”) used to suppress background events. The energy and timestamp of detected α, β and γ emissions are recorded event-by-event and analyzed offline. By requiring timing coincidence between the HPGe and LS detectors, background events originating from outside the volume of the measured sample can be effectively rejected. The system performance was evaluated using liquid samples containing known activities of an α emitter (241Am) or a β emitter (60Co) whose decays are accompanied by γ rays. The LS detector was found to provide a solid angle of almost 4π for α and β particles. Compared to the traditional γ-singles mode, operating the system in coincidence mode (i.e., α-γ or β-γ) reduced the background counts by a factor of ∼100. Consequently, the minimal detectable activity for 241Am and 60Co was improved by a factor of 9, being 4 mBq and 1 mBq for an 11-d measurement, respectively. Furthermore, by applying a spectrometric cut in the LS spectrum that corresponds to α emission from 241Am, a background reduction factor of ∼2400 (compared to γ-singles mode) was achieved. Beyond low-background measurements, this prototype exhibits additional compelling features, such as the ability to focus on certain decay channels and study their properties. This concept for a measurement system may be of interest to laboratories that monitor environmental radioactivity, studies involving environmental measurements and/or trace-level radioactivity.
AB - A ground-level prototype system for low-background measurements was developed and tested. The system consists of a high-purity germanium (HPGe) detector used for detecting γ rays and coupled to a liquid scintillator (LS) used for detecting α and β particles. Both detectors are surrounded by shielding materials and anti-cosmic detectors (“veto”) used to suppress background events. The energy and timestamp of detected α, β and γ emissions are recorded event-by-event and analyzed offline. By requiring timing coincidence between the HPGe and LS detectors, background events originating from outside the volume of the measured sample can be effectively rejected. The system performance was evaluated using liquid samples containing known activities of an α emitter (241Am) or a β emitter (60Co) whose decays are accompanied by γ rays. The LS detector was found to provide a solid angle of almost 4π for α and β particles. Compared to the traditional γ-singles mode, operating the system in coincidence mode (i.e., α-γ or β-γ) reduced the background counts by a factor of ∼100. Consequently, the minimal detectable activity for 241Am and 60Co was improved by a factor of 9, being 4 mBq and 1 mBq for an 11-d measurement, respectively. Furthermore, by applying a spectrometric cut in the LS spectrum that corresponds to α emission from 241Am, a background reduction factor of ∼2400 (compared to γ-singles mode) was achieved. Beyond low-background measurements, this prototype exhibits additional compelling features, such as the ability to focus on certain decay channels and study their properties. This concept for a measurement system may be of interest to laboratories that monitor environmental radioactivity, studies involving environmental measurements and/or trace-level radioactivity.
KW - Detection efficiency
KW - Gamma-ray spectrometry
KW - HPGe
KW - LSC
KW - Low-background counting
UR - http://www.scopus.com/inward/record.url?scp=85160341024&partnerID=8YFLogxK
U2 - https://doi.org/10.1016/j.apradiso.2023.110866
DO - https://doi.org/10.1016/j.apradiso.2023.110866
M3 - Article
C2 - 37235985
SN - 0969-8043
VL - 198
JO - Applied Radiation and Isotopes
JF - Applied Radiation and Isotopes
M1 - 110866
ER -