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A Monte Carlo Model of a Benchtop X-Ray Fluorescence Computed Tomography System and Its Application to Validate a Deconvolution-based X-Ray Fluorescence Signal Extraction Method

机译:台式X射线荧光计算机断层扫描系统的Monte Carlo模型及其在验证基于反卷积的X射线荧光信号提取方法中的应用

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摘要

In this study, we developed and validated a Geant4-based Monte Carlo (MC) model of an experimental bench-top x-ray fluorescence (XRF) computed tomography (XFCT) system for quantitative imaging of metallic nanoparticles such as gold nanoparticles (GNPs) injected into small animals for preclinical testing of various NP-based diagnostic and therapeutic approaches. Detailed hardware components of the current benchtop XFCT system, including the x-ray source, excitation beam collimation and filtration, custom imaging phantoms with GNP solutions, and single/ring/linear array detectors with custom collimation, were incorporated into the MC model. In conjunction with a known CdTe detector response function, a deconvolution-based XRF signal extraction method was also developed in this study, which enabled complete separation of gold K-shell XRF peaks even when they almost overlapped and facilitated extraction of XRF signals from a broadband Compton scattered photon background. The extracted signal-to-background ratios were comparable with those expected using an ideal detector with high enough energy resolution (e.g., 0.1 keV full width at half maximum). Once convoluted with the CdTe detector response function, the MC-calculated spectra for excitation beams or emitted photons and XFCT image spatial resolutions agreed well with those measured experimentally. Thus, the current MC model can be used to optimize the beam/imaging parameters (e.g., beam geometry, excitation x-ray beam energy, x-ray filter material) as well as the design of critical hardware components (e.g., detector collimators) within the current benchtop XFCT system. Also, the current XRF signal extraction method can relax the usual stringent requirement of detector energy resolution while not degrading the sensitivity of benchtop XFCT.
机译:在这项研究中,我们开发并验证了基于Geant4的蒙特卡洛(MC)模型,该模型是用于对金属纳米粒子(例如金纳米粒子)进行定量成像的实验台式X射线荧光(XRF)计算机断层扫描(XFCT)系统。将其注射到小型动物中,以进行各种基于NP的诊断和治疗方法的临床前测试。当前台式XFCT系统的详细硬件组件,包括X射线源,激发光束准直和过滤,具有GNP解决方案的定制成像体模以及具有定制准直的单/环形/线性阵列检测器,已被纳入MC模型。结合已知的CdTe检测器响应功能,在这项研究中还开发了基于反卷积的XRF信号提取方法,即使金K壳XRF峰几乎重叠,也可以完全分离它们,并有助于从宽带中提取XRF信号。康普顿分散的光子背景。所提取的信噪比与使用具有足够高的能量分辨率(例如,半最大值的全幅0.1 keV)的理想检测器所预期的信噪比相当。一旦用CdTe检测器响应函数进行卷积,激发光束或发射光子的MC计算光谱和XFCT图像空间分辨率与实验测量的光谱就很好地吻合了。因此,当前的MC模型可用于优化光束/成像参数(例如,光束几何形状,激发X射线束能量,X射线过滤器材料)以及关键硬件组件(例如探测器准直仪)的设计在当前台式XFCT系统中。同样,当前的XRF信号提取方法可以放宽通常对探测器能量分辨率的严格要求,同时又不会降低台式XFCT的灵敏度。

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