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Order of Magnitude Sensitivity Increase in X-ray Fluorescence Computed Tomography (XFCT) Imaging With an Optimized Spectro-Spatial Detector Configuration: Theory and Simulation

机译:具有优化的光谱空间检测器配置的X射线荧光计算机断层扫描(XFCT)成像中幅度灵敏度的增加顺序:理论和仿真

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摘要

The purpose of this study was to increase the sensitivity of XFCT imaging by optimizing the data acquisition geometry for reduced scatter X-rays. The placement of detectors and detector energy window were chosen to minimize scatter X-rays. We performed both theoretical calculations and Monte Carlo simulations of this optimized detector configuration on a mouse-sized phantom containing various gold concentrations. The sensitivity limits were determined for three different X-ray spectra: a monoenergetic source, a Gaussian source, and a conventional X-ray tube source. Scatter X-rays were minimized using a backscatter detector orientation (scatter direction > 110° to the primary X-ray beam). The optimized configuration simultaneously reduced the number of detectors and improved the image signal-to-noise ratio. The sensitivity of the optimized configuration was 10 µg/mL (10 pM) at 2 mGy dose with the mono-energetic source, which is an order of magnitude improvement over the unoptimized configuration (102 pM without the optimization). Similar improvements were seen with the Gaussian spectrum source and conventional X-ray tube source. The optimization improvements were predicted in the theoretical model and also demonstrated in simulations. The sensitivity of XFCT imaging can be enhanced by an order of magnitude with the data acquisition optimization, greatly enhancing the potential of this modality for future use in clinical molecular imaging.
机译:这项研究的目的是通过优化数据采集几何结构以减少散射X射线来提高XFCT成像的灵敏度。选择探测器的位置和探测器的能量窗口以最小化散射X射线。我们对包含各种金浓度的鼠标大小的幻像进行了这种优化检测器配置的理论计算和蒙特卡洛模拟。确定了三种不同X射线光谱的灵敏度极限:单能源,高斯源和常规X射线管源。使用反向散射检测器方向(散射方向与主X射线束> 110°)将散射X射线最小化。优化的配置同时减少了检测器的数量并提高了图像信噪比。使用单能量源时,优化配置的灵敏度在2 mGy剂量下为10 µg / mL(10 pM),比未优化配置(未优化的102 pM)提高了一个数量级。使用高斯光谱源和常规X射线管源也可以看到类似的改进。在理论模型中预测了优化改进,并在仿真中进行了证明。通过数据采集优化,可以将XFCT成像的灵敏度提高一个数量级,从而极大地增强了这种模式在临床分子成像中的应用潜力。

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