宽带x射线照相术光学。

IF 1.7 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION
Wiebe Stolp, Silvia Cipiccia, Darren Batey, Matthieu N Boone
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引用次数: 0

摘要

在传统的x射线平面摄影中,通过单色和空间相干的x射线束扫描样品来收集衍射数据。然后使用迭代算法检索高分辨率图像。结合对入射光子能量的扫描,还可以获取化学和元素信息。虽然功能强大,但所需的高亮度目前限制了该方法的第三代和第四代同步加速器源和长扫描时间。另一种方法是将宽带照明与能量分辨探测器结合使用。这些探测器同时在一系列能量通道中记录数据,形成适合于体图重建的相干数据堆栈。这种方法有望释放辐射源的全部功率,并在一次采集中以更高的速率提供光谱成像。然而,这些探测器目前的饱和率远低于同步加速器产生的通量率,这阻碍了这种方法的采用。此外,由于其稳定性、灵活性和可负担性,目前的单色同步加速器装置通常采用菲涅耳带片进行样品前聚焦,但这些衍射光学器件限制了装置可以接受的光谱带宽。在本文中,我们分析了这个问题,并考虑了可以最大化总光子探测率和拓宽可容忍带宽的替代光学器件。宽频带x射线照相术有可能大大减少同步加速器源的数据收集时间,但也可以利用低亮度光源和过渡x射线照相术的全部功率进入实验室技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optics for broadband x-ray ptychography.

In conventional x-ray ptychography, diffraction data are collected by scanning a sample through a monochromatic and spatially coherent x-ray beam. A high-resolution image is then retrieved using an iterative algorithm. Combined with a scan of the incident photon energy, it is also possible to access chemical and elemental information. Although powerful, the high brilliance required currently constrains the method to third and fourth generation synchrotron sources and long scanning times. An alternative approach is to use broadband illumination in combination with an energy resolving detector. These detectors record the data in a series of energy channels simultaneously, creating stacks of coherent data suitable for a ptychographic reconstruction. This approach promises to unlock the full power of the radiation source and provide spectral imaging at a higher rate and in a single acquisition. However, these detectors currently saturate well below reaching the flux rates produced at synchrotrons, which is preventing the uptake of this approach. Furthermore, current monochromatic synchrotron setups typically employ Fresnel zone plates for pre-sample focusing due to their stability, flexibility, and affordability, but these diffractive optics limit the spectral bandwidth that the setup can accept. In this article, we analyze the problem and consider alternative optics that can both maximize the total photon detection rates and broaden the tolerable bandwidth. Broadband x-ray ptychography has the potential to dramatically reduce data collection times at synchrotron sources but also to harness the full power of lower brilliance sources and transition x-ray ptychography into a laboratory technique.

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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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