论文标题

评估基于正电子发射术的SIPM读数,用于紧凑的分段中子成像仪

Evaluation of a Positron-Emission-Tomography-based SiPM readout for Compact Segmented Neutron Imagers

论文作者

Li, Viacheslav A., Sutanto, Felicia, Classen, Timothy M., Dazeley, Steven A., Jovanovic, Igor, Wu, Tingshiuan C.

论文摘要

使用适度的高Z材料从特殊核材料(SNM)发出的伽马射线发射相对容易避免检测。相比之下,快速中性基质的穿透力更大,并且可以逃脱相对较厚的高Z屏蔽而不会失去明显的能量。此外,快速中子为SNM的存在提供了一个明确而明确的标志,而SNM很少有自然背景来源。检测快速中子的挑战是双重的。首先,来自SNM的中子通量仅是相应的伽马射线通量的一小部分。其次,快速中子可能很难与伽马射线区分开。区分伽马射线与中子与中子成像结合的能力可以产生巨大的好处,以将局部SNM中子源与背景分离。随着脉冲形状敏感塑料闪光灯的最新发展,提供了出色的伽马射线/中子辨别力,以及硅光电层面的阵列,结合了高度可扩展和快速的正电子发射 - 发射学(PET)多通道读取系统,适合SNM的野外中子成像器,现在可以触及SNM。在本文中,我们介绍了最近可用的商业宠物扫描仪读数的性能的表征,包括它对快速中性子和伽玛射线之间的脉搏形差异的敏感性,能量和计时分辨率,以及线性和动态范围。我们发现,虽然脉冲歧视是可以通过Stilbene实现的,但需要进一步改进读数,以使用最佳可用的塑料闪光灯来实现它。在某些情况下,时间和能量分辨率似乎足以用于中子成像。

Gamma-ray emission from special nuclear material (SNM) is relatively easy to shield from detection using modest amounts of high-Z material. In contrast, fast-neutrons are much more penetrating and can escape relatively thick high-Z shielding without losing significant energy. Furthermore, fast neutrons provide a clear and unambiguous signature of the presence of SNM with few competing natural background sources. The challenge of detecting fast neutrons is twofold. First, the neutron flux from SNM are only a fraction of the corresponding gamma-ray flux. Second, fast neutrons can be difficult to differentiate from gamma rays. The ability to discriminate gamma rays from neutrons combined with neutron imaging can yield large benefit to isolate the localized SNM neutron source from background. With the recent developments of pulse-shape-sensitive plastic scintillators that offer excellent gamma-ray/neutron discrimination, and arrays of silicon photomultipliers combined with highly scalable and fast positron-emission-tomography (PET) multi-channel readout systems, field-deployable neutron imagers suitable for SNM detection might now be within reach. In this paper, we present a characterization of the performance of a recently available commercial PET-scanner readout, including its sensitivity to pulse-shape differences between fast neutrons and gamma rays, energy and timing resolution, as well as linearity and dynamic range. We find that, while the pulse-shape discrimination is achievable with stilbene, further improvement of the readout is required to achieve it with the best available plastic scintillators. The time and energy resolution appear to be adequate for neutron imaging in some circumstances.

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