Department of Physics, University of Trieste, 34127, Trieste, Italy.
Division of Trieste, National Institute for Nuclear Physics (INFN), 34127, Trieste, Italy.
Sci Rep. 2023 Mar 14;13(1):4206. doi: 10.1038/s41598-023-30316-5.
This paper presents a new flexible compact multi-modal imaging setup referred to as PEPI (Photon-counting Edge-illumination Phase-contrast imaging) Lab, which is based on the edge-illumination (EI) technique and a chromatic detector. The system enables both X-ray phase-contrast (XPCI) and spectral (XSI) imaging of samples on the centimeter scale. This work conceptually follows all the stages in its realization, from the design to the first imaging results. The setup can be operated in four different modes, i.e. photon-counting/conventional, spectral, double-mask EI, and single-mask EI, whereby the switch to any modality is fast, software controlled, and does not require any hardware modification or lengthy re-alignment procedures. The system specifications, ranging from the X-ray tube features to the mask material and aspect ratio, have been quantitatively studied and optimized through a dedicated Geant4 simulation platform, guiding the choice of the instrumentation. The realization of the imaging setup, both in terms of hardware and control software, is detailed and discussed with a focus on practical/experimental aspects. Flexibility and compactness (66 cm source-to-detector distance in EI) are ensured by dedicated motion stages, whereas spectral capabilities are enabled by the Pixirad-1/Pixie-III detector in combination with a tungsten anode X-ray source operating in the range 40-100 kVp. The stability of the system, when operated in EI, has been verified, and drifts leading to mask misalignment of less than 1 [Formula: see text]m have been measured over a period of 54 h. The first imaging results, one for each modality, demonstrate that the system fulfills its design requirements. Specifically, XSI tomographic images of an iodine-based phantom demonstrate the system's quantitativeness and sensibility to concentrations in the order of a few mg/ml. Planar XPCI images of a carpenter bee specimen, both in single and double-mask modes, demonstrate that refraction sensitivity (below 0.6 [Formula: see text]rad in double-mask mode) is comparable with other XPCI systems based on microfocus sources. Phase CT capabilities have also been tested on a dedicated plastic phantom, where the phase channel yielded a 15-fold higher signal-to-noise ratio with respect to attenuation.
本文提出了一种新的灵活紧凑的多模态成像系统,称为 PEPI(光子计数边缘照明相衬成像)实验室,它基于边缘照明(EI)技术和彩色探测器。该系统能够对厘米级的样品进行 X 射线相衬(XPCI)和光谱(XSI)成像。这项工作从实现的各个阶段进行了概念上的阐述,从设计到第一个成像结果。该系统可以在四种不同模式下运行,即光子计数/常规、光谱、双掩模 EI 和单掩模 EI,其中任何模式的切换都非常快速,软件控制,并且不需要任何硬件修改或冗长的重新对准程序。通过专门的 Geant4 模拟平台,对从 X 射线管特性到掩模材料和纵横比的系统规格进行了定量研究和优化,指导了仪器的选择。成像系统的实现,包括硬件和控制软件,都进行了详细的描述和讨论,重点是实际/实验方面。专用运动台确保了灵活性和紧凑性(EI 中的源到探测器距离为 66cm),而 Pixirad-1/Pixie-III 探测器与钨阳极 X 射线源相结合,可在 40-100kVp 范围内工作,实现了光谱能力。当系统在 EI 模式下运行时,已经验证了其稳定性,并且在 54 小时的时间内测量到导致掩模对准偏差小于 1μm 的漂移。每种模式的第一个成像结果都表明,该系统满足其设计要求。具体来说,基于碘的体模的 XSI 断层图像证明了系统的定量和对浓度的敏感性,其浓度在几毫克/毫升的数量级。在单掩模和双掩模两种模式下,对木匠蜂标本的平面 XPCI 图像的成像结果表明,折射灵敏度(在双掩模模式下低于 0.6rad)与基于微焦点源的其他 XPCI 系统相当。还在专用塑料体模上测试了相位 CT 能力,相位通道的信噪比相对于衰减提高了 15 倍。