End-to-end design of multicolor scintillators for enhanced energy resolution in X-ray imaging

IF 23.4 Q1 OPTICS Light-Science & Applications Pub Date : 2025-04-11 DOI:10.1038/s41377-025-01836-8
Seokhwan Min, Seou Choi, Simo Pajovic, Sachin Vaidya, Nicholas Rivera, Shanhui Fan, Marin Soljačić, Charles Roques-Carmes
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Abstract

Scintillators have been widely used in X-ray imaging due to their ability to convert high-energy radiation into visible light, making them essential for applications such as medical imaging and high-energy physics. Recent advances in the artificial structuring of scintillators offer new opportunities for improving the energy resolution of scintillator-based X-ray detectors. Here, we present a three-bin energy-resolved X-ray imaging framework based on a three-layer multicolor scintillator used in conjunction with a physics-aware image postprocessing algorithm. The multicolor scintillator is able to preserve X-ray energy information through the combination of emission wavelength multiplexing and energy-dependent isolation of X-ray absorption in specific layers. The dominant emission color and the radius of the spot measured by the detector are used to infer the incident X-ray energy based on prior knowledge of the energy-dependent absorption profiles of the scintillator stack. Through ab initio Monte Carlo simulations, we show that our approach can achieve an energy reconstruction accuracy of 49.7%, which is only 2% below the maximum accuracy achievable with realistic scintillators. We apply our framework to medical phantom imaging simulations where we demonstrate that it can effectively differentiate iodine and gadolinium-based contrast agents from bone, muscle, and soft tissue.

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多色闪烁体的端到端设计,用于增强x射线成像中的能量分辨率
闪烁体被广泛应用于x射线成像,因为它们能够将高能辐射转化为可见光,这使得它们对于医学成像和高能物理等应用至关重要。闪烁体人工结构的最新进展为提高基于闪烁体的x射线探测器的能量分辨率提供了新的机会。在这里,我们提出了一个基于三层多色闪烁体的三箱能量分辨率x射线成像框架,该框架与物理感知图像后处理算法结合使用。该多色闪烁体通过发射波长复用和特定层中x射线吸收的能量依赖隔离相结合,能够保存x射线能量信息。利用探测器测得的主发射色和光斑半径,根据闪烁体叠加的能量依赖吸收分布的先验知识,推断出入射的x射线能量。通过从头算蒙特卡罗模拟,我们表明我们的方法可以实现49.7%的能量重建精度,仅比真实闪烁体所能达到的最大精度低2%。我们将我们的框架应用于医学幻影成像模拟,在那里我们证明它可以有效地区分基于碘和钆的对比剂与骨骼、肌肉和软组织。
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来源期刊
Light-Science & Applications
Light-Science & Applications 数理科学, 物理学I, 光学, 凝聚态物性 II :电子结构、电学、磁学和光学性质, 无机非金属材料, 无机非金属类光电信息与功能材料, 工程与材料, 信息科学, 光学和光电子学, 光学和光电子材料, 非线性光学与量子光学
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