Bernacki Bruce E, Douglas Matthew, Erchinger Jennifer L, Fuller Erin S, Keillor Martin E, Morley Shannon M, Mullen Crystal A, Orrell John L, Panisko Mark E, Warren Glen A, Wright Michael E
Appl Opt. 2015 Mar 20;54(9):2413-23. doi: 10.1364/AO.54.002413.
Liquid scintillation counters measure charged particle-emitting radioactive isotopes and are used for environmental studies, nuclear chemistry, and life science. Alpha and beta emissions arising from the material under study interact with the scintillation cocktail to produce light. The prototypical liquid scintillation counter employs low-level photon-counting detectors to measure the arrival of the scintillation. For reliable operation, the counting instrument must convey the scintillation light to the detectors efficiently and predictably. Current best practices employ the use of two or more detectors for coincidence processing to discriminate true scintillation events from background events due to instrumental effects such as photomultiplier tube dark rates, tube flashing, or other light emission not generated in the scintillation cocktail vial. In low-background liquid scintillation counters, additional attention is paid to shielding the scintillation cocktail from naturally occurring radioactive material present in the laboratory and within the instrument's construction materials. Low-background design is generally at odds with optimal light collection. This study presents the evolution of a light collection design for liquid scintillation counting (LSC) in a low-background shield. The basic approach to achieve both good light collection and a low-background measurement is described. The baseline signals arising from the scintillation vial are modeled and methods to efficiently collect scintillation light are presented as part of the development of a customized low-background, high-sensitivity LSC system.
液体闪烁计数器用于测量发射带电粒子的放射性同位素,可用于环境研究、核化学和生命科学领域。被研究物质产生的α和β辐射与闪烁液相互作用产生光。典型的液体闪烁计数器采用低水平光子计数探测器来测量闪烁光的到达。为了可靠运行,计数仪器必须将闪烁光高效且可预测地传输到探测器。当前的最佳实践是使用两个或更多探测器进行符合处理,以区分真正的闪烁事件与由于诸如光电倍增管暗计数率、管子闪烁或闪烁液小瓶中未产生的其他光发射等仪器效应引起的背景事件。在低本底液体闪烁计数器中,需要特别注意将闪烁液与实验室和仪器建筑材料中存在的天然放射性物质隔离开来。低本底设计通常与最佳光收集相互矛盾。本研究介绍了低本底屏蔽中液体闪烁计数(LSC)光收集设计的演变。描述了实现良好光收集和低本底测量的基本方法。作为定制的低本底、高灵敏度LSC系统开发的一部分,对闪烁瓶产生的基线信号进行了建模,并提出了有效收集闪烁光的方法。