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二维物体的三维倒易空间 X 射线相干散射层析成像。

Three-dimensional reciprocal space x-ray coherent scattering tomography of two-dimensional object.

机构信息

The College of Optics and Photonics, CREOL, University of Central Florida, Orlando, FL, 32816, USA.

出版信息

Med Phys. 2018 Apr;45(4):1654-1661. doi: 10.1002/mp.12813. Epub 2018 Mar 13.

Abstract

PURPOSE

X-ray coherent scattering tomography is a powerful tool in discriminating biological tissues and bio-compatible materials. Conventional x-ray scattering tomography framework can only resolve isotropic scattering profile under the assumption that the material is amorphous or in powder form, which is not true especially for biological samples with orientation-dependent structure. Previous tomography schemes based on x-ray coherent scattering failed to preserve the scattering pattern from samples with preferred orientations, or required elaborated data acquisition scheme, which could limit its application in practical settings. Here, we demonstrate a simple imaging modality to preserve the anisotropic scattering signal in three-dimensional reciprocal (momentum transfer) space of a two-dimensional sample layer.

METHODS

By incorporating detector movement along the direction of x-ray beam, combined with a tomographic data acquisition scheme, we match the five dimensions of the measurements with the five dimensions (three in momentum transfer domain, and two in spatial domain) of the object. We employed a collimated pencil beam of a table-top copper-anode x-ray tube, along with a panel detector to investigate the feasibility of our method.

RESULTS

We have demonstrated x-ray coherent scattering tomographic imaging at a spatial resolution ~2 mm and momentum transfer resolution 0.01 Å for the rotation-invariant scattering direction. For any arbitrary, non-rotation-invariant direction, the same spatial and momentum transfer resolution can be achieved based on the spatial information from the rotation-invariant direction. The reconstructed scattering profile of each pixel from the experiment is consistent with the x-ray diffraction profile of each material. The three-dimensional scattering pattern recovered from the measurement reveals the partially ordered molecular structure of Teflon wrap in our sample.

CONCLUSIONS

We extend the applicability of conventional x-ray coherent scattering tomography to the reconstruction of two-dimensional samples with anisotropic scattering profile by introducing additional degree of freedom on the detector. The presented method has the potential to achieve low-cost, high-specificity material discrimination based on x-ray coherent scattering.

摘要

目的

X 射线相干散射层析成像技术是区分生物组织和生物兼容材料的有力工具。传统的 X 射线散射层析成像框架只能在假设材料为非晶态或粉末形式的情况下解析各向同性散射轮廓,这在具有各向异性结构的生物样本中并不准确。以前基于 X 射线相干散射的层析成像方案未能保留具有优先取向的样品的散射图案,或者需要复杂的数据采集方案,这可能限制了其在实际设置中的应用。在这里,我们展示了一种简单的成像方式,可以在二维样品层的三维倒易(动量传递)空间中保留各向异性散射信号。

方法

通过沿 X 射线束方向移动探测器,并结合层析成像数据采集方案,我们将五次测量维度与五次物体维度(动量传递域中的三个维度和空间域中的两个维度)相匹配。我们使用桌面铜阳极 X 射线管的准直铅笔束和面板探测器来研究我们方法的可行性。

结果

我们已经在旋转不变散射方向上实现了空间分辨率约为 2 毫米和动量传递分辨率为 0.01 Å 的 X 射线相干散射层析成像。对于任何任意的、非旋转不变的方向,都可以基于旋转不变方向的空间信息实现相同的空间和动量传递分辨率。实验中每个像素的重建散射轮廓与每种材料的 X 射线衍射轮廓一致。从测量中恢复的三维散射图案揭示了我们样品中特氟龙包裹的部分有序分子结构。

结论

我们通过在探测器上引入额外的自由度,将传统的 X 射线相干散射层析成像技术的适用性扩展到各向异性散射轮廓的二维样品的重建。所提出的方法有可能基于 X 射线相干散射实现低成本、高特异性的材料鉴别。

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