State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China.
State Key Laboratory of Extreme Photonics and Instrumentation, ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 315100, People's Republic of China.
Phys Med Biol. 2023 Sep 25;68(19). doi: 10.1088/1361-6560/acf5c3.
. X-ray phase contrast imaging is a promising technique for future clinical diagnostic as it can provide enhanced contrast in soft tissues compared to traditional x-ray attenuation-contrast imaging. However, the strict requirements on the x-ray coherence and the precise alignment of optical elements limit its applications towards clinical use. To solve this problem, mesh-based x-ray phase contrast imaging method with one hexagonal mesh is proposed for easy alignment and better image visualization.. The mesh produces structured illuminations and the detector captures its distortions to reconstruct the absorption, differential phase contrast (DPC) and dark-field (DF) images of the sample. In this work, we fabricated a hexagonal mesh to simultaneously retrieve DPC and DF signals in three different directions with single shot. A phase retrieval algorithm to obtain artifacts-free phase from DPC images with three different directions is put forward and false color dark-field image is also reconstructed with tri-directional images. Mesh-shifting method based on this hexagonal mesh modulator is also proposed to reconstruct images with better image quality at the expense of increased dose.. In numerical simulations, the proposed hexagonal mesh outperforms the traditional square mesh in image evaluation metrics performance and false color visualization with the same radiation dose. The experimental results demonstrate its feasiblity in real imaging systems and its advantages in quantitive imaging and better visualization. The proposed hexagonal mesh is easy to fabricate and can be successfully applied to x-ray source with it spot size up to 300m.. This work opens new possibilities for quantitative x-ray non-destructive imaging and may also be instructive for research fields such as x-ray structured illumination microscopy (SIM), x-ray spectral imaging and x-ray phase contrast and dark-field computed tomography (CT).
. 基于网格的 X 射线相衬成像方法具有一个六边形网格,易于对准,图像可视化效果更好。. 该网格产生结构照明,探测器捕获其变形,以重建样品的吸收、差分相衬 (DPC) 和暗场 (DF) 图像。在这项工作中,我们制作了一个六边形网格,可在单次拍摄中同时从三个不同方向获取 DPC 和 DF 信号。提出了一种相位恢复算法,可从具有三个不同方向的 DPC 图像中获得无伪影的相位,并使用三向图像重建假彩色暗场图像。还提出了基于该六边形网格调制器的网格移位方法,以牺牲剂量增加为代价,获得更好的图像质量的图像。. 在数值模拟中,与传统的正方形网格相比,所提出的六边形网格在相同辐射剂量下具有更好的图像评估指标性能和假彩色可视化效果。实验结果证明了它在实际成像系统中的可行性及其在定量成像和更好可视化方面的优势。所提出的六边形网格易于制造,并可成功应用于光斑尺寸达 300m 的 X 射线源。. 这项工作为定量 X 射线无损成像开辟了新的可能性,也可能对 X 射线结构照明显微镜 (SIM)、X 射线光谱成像以及 X 射线相衬和暗场计算机断层扫描 (CT) 等研究领域具有指导意义。