Chen Hui, Gu Mu, Liu Xiaolin, Zhang Juannan, Liu Bo, Huang Shiming, Ni Chen
Shanghai Key Laboratory of Special Artificial Microstructure Materials and Technology, School of Physics Science and Engineering, Tongji University, Shanghai, 200092, P. R. China.
Sci Rep. 2018 Nov 14;8(1):16819. doi: 10.1038/s41598-018-34852-3.
The performances of the pixelated CsI(Tl) scintillation screens based on oxidized silicon micro-pore array templates with different CsI(Tl) micro-column shapes and array structures in X-ray imaging were simulated using the Geant4 Monte Carlo simulation code. The shapes of the micro-columns include square, hexagonal and circular, and the array structures include square and hexagonal arrangements. The pitch size of the pixelated CsI(Tl) scintillation screens was set to 4 µm, and the incident X-ray energy was set to 20 keV. The ratios of the number of scintillation photons that propagate along the CsI(Tl) micro-columns to the total number of scintillation photons of the micro-columns gradually decrease with the increase in total reflection time on the lateral surfaces of the micro-columns. However, these ratios are closely related to the shapes of the micro-columns and the incident positions of X-ray on the cross-sections of the micro-columns, especially for the circular micro-column. The sequence of bottom light outputs stimulated by a uniform flood field of X-ray from high to low corresponds to the circular, square and hexagonal CsI(Tl) micro-columns with the same cross-section areas. In addition, all spatial resolutions in terms of modulation transfer functions (MTFs) for the pixelated CsI(Tl) scintillation screens with square and hexagonal array structures are over 100 lp/mm. However, the resolution for the pixelated screen with the hexagonal array structure is approximately 8.5% higher than that for the screen with the square array structure. Moreover, the former screen has a higher detective quantum efficiency (DQE) than the latter screen at the same thickness. The pixelated CsI(Tl) scintillation screen with circular micro-column and hexagonal array structure in X-ray imaging has superior performance compared to other pixelated screens in this work.
使用Geant4蒙特卡罗模拟代码,对基于具有不同CsI(Tl)微柱形状和阵列结构的氧化硅微孔阵列模板的像素化CsI(Tl)闪烁屏在X射线成像中的性能进行了模拟。微柱的形状包括方形、六边形和圆形,阵列结构包括方形和六边形排列。像素化CsI(Tl)闪烁屏的间距尺寸设置为4 µm,入射X射线能量设置为20 keV。沿着CsI(Tl)微柱传播的闪烁光子数量与微柱闪烁光子总数的比值随着微柱侧面全反射时间的增加而逐渐降低。然而,这些比值与微柱的形状以及X射线在微柱横截面上的入射位置密切相关,尤其是对于圆形微柱。由均匀X射线泛光场激发的底部光输出从高到低的顺序对应于具有相同横截面积的圆形、方形和六边形CsI(Tl)微柱。此外,具有方形和六边形阵列结构的像素化CsI(Tl)闪烁屏在调制传递函数(MTF)方面的所有空间分辨率均超过100 lp/mm。然而,具有六边形阵列结构的像素化屏幕的分辨率比具有方形阵列结构的屏幕高出约8.5%。此外,在相同厚度下,前者屏幕的探测量子效率(DQE)高于后者屏幕。在X射线成像中,具有圆形微柱和六边形阵列结构的像素化CsI(Tl)闪烁屏与本工作中的其他像素化屏幕相比具有优越的性能。