[HTML][HTML] Development of simultaneous multi-channel data acquisition system for large-area Compton camera (LACC)

J Lee, Y Ku, S Choi, G Lee, T Eom, HS Lee… - Nuclear Engineering …, 2023 - Elsevier
J Lee, Y Ku, S Choi, G Lee, T Eom, HS Lee, JH Kim, CH Kim
Nuclear Engineering and Technology, 2023Elsevier
The large-area Compton camera (LACC), featuring significantly high detection sensitivity,
was developed for high-speed localization of gamma-ray sources. Due to the high gamma-
ray interaction event rate induced by the high sensitivity, however, the multiplexer-based
data acquisition system (DAQ) rapidly saturated, leading to deteriorated energy and imaging
resolution at event rates higher than 4.7× 10 3 s− 1. In the present study, a new
simultaneous multi-channel DAQ was developed to improve the energy and imaging …
Abstract
The large-area Compton camera (LACC), featuring significantly high detection sensitivity, was developed for high-speed localization of gamma-ray sources. Due to the high gamma-ray interaction event rate induced by the high sensitivity, however, the multiplexer-based data acquisition system (DAQ) rapidly saturated, leading to deteriorated energy and imaging resolution at event rates higher than 4.7 × 103 s−1. In the present study, a new simultaneous multi-channel DAQ was developed to improve the energy and imaging resolution of the LACC even under high event rate conditions (104–106 s−1). The performance of the DAQ was evaluated with several point sources under different event rate conditions. The results indicated that the new DAQ offers significantly better performance than the existing DAQ over the entire energy and event rate ranges. Especially, the new DAQ showed high energy resolution under very high event rate conditions, i.e., 6.9% and 8.6% (for 662 keV) at 1.3 × 105 and 1.2 × 106 s−1, respectively. Furthermore, the new DAQ successfully acquired Compton images under those event rates, i.e., imaging resolutions of 13.8° and 19.3° at 8.7 × 104 and 106 s−1, which correspond to 1.8 and 73 μSv/hr or about 18 and 730 times the background level, respectively.
Elsevier
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