Ran Peng, Yang Lurong, Jiang Tingming, Xu Xuehui, Hui Juan, Su Yirong, Kuang Cuifang, Liu Xu, Yang Yang Michael
State Key Laboratory of Modern Optical Instrumentation, College of Optical Science and Engineering, International Research Center for Advanced Photonics, Zhejiang University, Hangzhou, Zhejiang, 310027, China.
Intelligent Optics & Photonics Research Center Jiaxing Institute of Zhejiang University, Jiaxing, Zhejiang, 314041, China.
Adv Mater. 2022 Oct;34(42):e2205458. doi: 10.1002/adma.202205458. Epub 2022 Sep 16.
Conventional energy-integration black-white X-ray imaging lacks the spectral information of X-ray photons. Although X-ray spectra (energy) can be distinguished by the photon-counting technique typically with CdZnTe detectors, it is very challenging to be applied to large-area flat-panel X-ray imaging (FPXI). Herein, multilayer stacked scintillators of different X-ray absorption capabilities and scintillation spectra are designed; in this scenario, the X-ray energy can be discriminated by detecting the emission spectra of each scintillator; therefore, multispectral X-ray imaging can be easily obtained by color or multispectral visible-light camera in a single shot of X-rays. To verify this idea, stacked multilayer scintillators based on several emerging metal halides are fabricated in a cost-effective and scalable solution process, and proof-of-concept multispectral (or multi-energy) FPXI are experimentally demonstrated. The dual-energy X-ray image of a "bone-muscle" model clearly shows the details that are invisible in conventional energy-integration FPXI. By stacking four layers of specifically designed multilayer scintillators with appropriate thicknesses, a prototype FPXI with four energy channels is realized, proving its extendibility to multispectral or even hyperspectral X-ray imaging. This study provides a facile and effective strategy to realize multispectral large-area flat-panel X-ray imaging.
传统的能量积分黑白X射线成像缺乏X射线光子的光谱信息。尽管X射线光谱(能量)可以通过通常使用碲锌镉探测器的光子计数技术来区分,但将其应用于大面积平板X射线成像(FPXI)极具挑战性。在此,设计了具有不同X射线吸收能力和闪烁光谱的多层堆叠闪烁体;在这种情况下,可以通过检测每个闪烁体的发射光谱来区分X射线能量;因此,通过彩色或多光谱可见光相机在单次X射线照射下即可轻松获得多光谱X射线成像。为了验证这一想法,基于几种新兴金属卤化物的堆叠多层闪烁体通过具有成本效益且可扩展的溶液法制备而成,并通过实验展示了概念验证多光谱(或多能量)FPXI。“骨骼 - 肌肉”模型的双能X射线图像清楚地显示了传统能量积分FPXI中不可见的细节。通过堆叠四层具有适当厚度的专门设计的多层闪烁体,实现了具有四个能量通道的FPXI原型,证明了其向多光谱甚至高光谱X射线成像扩展的可行性。本研究提供了一种简便有效的策略来实现多光谱大面积平板X射线成像。