首页> 外文会议>Conference on Developments in Ⅹ-Ray Tomography Ⅲ, Aug 2-3, 2001, San Diego, USA >In-line Phase Contrast In Synchrotron-Radiation Microradiography And Tomography
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In-line Phase Contrast In Synchrotron-Radiation Microradiography And Tomography

机译:同步辐射显微照相和层析成像中的在线相位对比

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When used in microimaging, hard X rays from third-generation synchrotron radiation (SR) sources inevitably generate non-interferometric or "in-line" phase contrast. It is formed by the propagation of a distorted X-ray wavefront after the sample. In this paper, we discuss phase contrast and its properties in two altogether different experimental modes: First, in edge-enhanced microtomography, we show by phase-propagation simulations that local tomography is possible without special effort. The second part of the paper discusses phase contrast and phase artifacts in magnified X-ray imaging and tomography using refractive lenses. Here, the phase effects degrade resolution to a considerable extent. This part of the paper contains experimental results from the ESRF beamline ID 22 in the photon energy range around 20 keV that are compared to simulated images and to experimental results from conventional high-resolution microtomography. The experimental results show that coherence-degrading devices can reduce but not completely eliminate phase effects, and recent microtomography data gathered with an X-ray microscope still cannot beat conventional state-of-the-art high-resolution microtomography with micrometer resolution.
机译:当用于显微成像时,来自第三代同步加速器辐射(SR)的硬X射线不可避免地会产生非干涉或“在线”相衬。它是由样品后X射线畸变的波前传播形成的。在本文中,我们讨论了两种完全不同的实验模式下的相衬及其特性:首先,在边缘增强显微照相术中,我们通过相传播模拟表明无需进行特殊的努力就可以进行局部层析成像。本文的第二部分讨论了使用折射镜在X射线放大成像和X线断层扫描中的相位对比和相位伪影。在此,相位效应会在很大程度上降低分辨率。本文的这一部分包含ESRF光束线ID 22在约20 keV的光子能量范围内的实验结果,并将这些结果与模拟图像和常规高分辨率显微断层照相术的实验结果进行比较。实验结果表明,相干降解设备可以减少但不能完全消除相位影响,并且使用X射线显微镜收集的最新显微图像数据仍无法击败具有微米分辨率的传统的最新高分辨率显微图像技术。

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