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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research >Optimization of ~6LiF:ZnS(Ag) scintillator light yield using GEANT4
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Optimization of ~6LiF:ZnS(Ag) scintillator light yield using GEANT4

机译:使用GEANT4优化〜6LiF:ZnS(Ag)闪烁体的光产量

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A new cold neutron detector has been developed at the NIST Center for Neutron Research (NCNR) for the CANDoR (Chromatic Analysis Neutron Diffractometer or Reflectometer) project. Geometric and performance constraints dictate that this detector be exceptionally thin (∼2 mm). For this reason, the design of the detector consists of a6LiF:ZnS(Ag) scintillator with embedded wavelength shifting (WLS) fibers. We used the GEANT4 package to simulate neutron capture and light transport in the detector to optimize the composition and arrangement of materials to satisfy the competing requirements of high neutron capture probability and light production and transport. In the process, we have developed a method for predicting light collection and total neutron detection efficiency for different detector configurations.The simulation was performed by adjusting crucial parameters such as the scintillator stoichiometry, light yield, component grain size, WLS fiber geometry, and reflectors at the outside edges of the scintillator volume. Three different detector configurations were fabricated and their test results were correlated with the simulations. Through this correlation we have managed to find a common photon threshold for the different detector configurations which was then used to simulate and predict the efficiencies for many other detector configurations. New detectors that have been fabricated based on simulation results yielding the desired sensitivity of 90% for 3.27 meV (5 Å) cold neutrons.The simulation has proven to be a useful tool by dramatically reducing the development period and the required number of detector prototypes. It can be used to test new designs with different thicknesses and different target neutron energies.
机译:NIST中子研究中心(NCNR)已开发出一种新的冷中子探测器,用于CANDoR(色度分析中子衍射仪或反射仪)项目。几何和性能方面的限制规定该检测器必须非常薄(约2 mm)。因此,检测器的设计由具有嵌入的波长偏移(WLS)光纤的6LiF:ZnS(Ag)闪烁体组成。我们使用GEANT4软件包来模拟探测器中的中子捕获和光传输,以优化材料的成分和排列,以满足高中子捕获概率以及光产生和传输的竞争要求。在此过程中,我们开发了一种预测不同探测器配置的光收集和总中子探测效率的方法。通过调整关键参数(例如闪烁体的化学计量,光产量,组件粒度,WLS光纤几何形状和反射器)来进行仿真在闪烁体体积的外部边缘。制作了三种不同的检测器配置,并将它们的测试结果与仿真进行了关联。通过这种关联,我们设法找到了适用于不同检测器配置的通用光子阈值,然后将其用于模拟和预测许多其他检测器配置的效率。根据仿真结果制造的新型探测器,对于3.27 meV(5Å)冷中子具有90%的期望灵敏度。事实证明,通过显着缩短开发周期和减少探测器原型的数量,仿真是一种有用的工具。它可以用于测试具有不同厚度和目标中子能量的新设计。

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