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Hard X-ray Ptychography: Making It Cool, Colorful and Fast.

机译:硬X射线刻印术:使其凉爽,彩色和快速。

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摘要

Ptychography is a recently developed coherent imaging technique for extended objects, with a resolution not limited by the lens. Because X-rays have short wavelengths and high penetration ability, X-ray ptychography provides a powerful and unique tool for studying thick samples at high spatial resolution. We have advanced X-ray ptychography by making it cool, colorful, and fast. We make it cool by carrying out ptychography experiments at cryogenic conditions to image frozen-hydrated specimens. This largely removes the limitations of radiation damage on the achievable resolution, and allows one to obtain excellent preservation of structure and chemistry in biological specimens.;We make it colorful by combining it with X-ray fluorescence measurements of chemical element distributions. In studies of biological specimens, this means that ptychography can reveal cellular ultrastructure at high contrast and at a resolution well beyond that of X-ray focusing optics, while X-ray fluorescence is used to simultaneously image the distribution of trace elements in cells (such as metals that play key roles in cell functions and which can be used in various disease therapeutic agents). Because X-ray fluorescence is not very sensitive for showing the light elements that comprise the majority of cellular materials, this combined approach provides the unique tool to obtain simultaneous views of ultrastructure and elemental compositions of specimens.;We make it fast by using continuous-scan (or "fly-scan") methods. Conventional ptychography is implemented in a move-settle-measure approach, which is slow due to the positioning overheads. To overcome this bottleneck, we have developed fly-scan ptychography that is able to speed up the data collection, and real time on-site data analysis can be achieved by using a parallelized reconstruction code.;With these advances, we conducted combined cryo X-ray ptychography and fluorescence imaging at 5.2 keV in a more practical way using fly scan, well-preserved cryogenic samples and rapid reconstructions, and obtained images of a whole frozen-hydrated eukaryotic cell at 18 nm resolution which we believe to be the highest spatial resolution obtained in X-ray imaging of frozen-hydrated biological samples to date. After a successful demonstration of fly-scan 3D ptychography on a gold test sample, we also obtained fly-scan 3D ptychography and fluorescence data on frozen-hydrated cells with an imaging speedup of factor more than 7. Finally, we applied fly-scan X-ray ptychography on un-thinned integrated circuits (ICs) using 10 keV X-rays, and were able to see the circuit details within the thick IC chips with a high resolution of 11.6 nm. All of these achievements point the way toward high-speed X-ray imaging without lens-imposed resolution limit.
机译:笔录技术是最近开发的用于扩展对象的相干成像技术,其分辨率不受镜头的限制。由于X射线具有短波长和高穿透能力,因此X射线分型术为研究高空间分辨率的厚样品提供了强大而独特的工具。我们拥有先进的X射线谱图技术,可以使其变得凉快,色彩鲜艳且速度快。我们通过在低温条件下进行刻印术实验来对冷冻水合标本进行成像来使其凉爽。这在很大程度上消除了辐射损伤对可达到的分辨率的限制,并使人们能够在生物样本中获得出色的结构和化学保存。;我们将其与化学元素分布的X射线荧光测量相结合,使其变得丰富多彩。在生物标本的研究中,这意味着分谱法可以显示高对比度和远高于X射线聚焦光学系统的分辨率的细胞超微结构,而X射线荧光用于同时成像细胞中微量元素的分布(例如作为在细胞功能中起关键作用的金属,可用于各种疾病治疗剂)。由于X射线荧光对于显示构成大多数细胞材料的轻元素不是很敏感,因此这种组合方法为获得标本的超微结构和元素组成的同时视图提供了独特的工具。扫描(或“快速扫描”)方法。传统的排印术是通过移动沉降测量方法实现的,由于定位开销,该方法很慢。为了克服这一瓶颈,我们开发了可加快数据收集速度的飞行扫描谱图技术,并可以使用并行化的重构代码来实现实时现场数据分析。;借助这些进展,我们进行了组合cryo X使用蝇扫描,保存完好的低温样品和快速重建,以更实用的方式对5.2 keV进行光电子刻图和荧光成像,并获得了分辨率为18 nm的整个冷冻水合真核细胞的图像,我们认为这是空间最高的迄今为止在冷冻水合生物样品的X射线成像中获得的分辨率。成功演示了金测试样品上的飞行扫描3D指纹图谱后,我们还获得了冷冻水合细胞的飞行扫描3D指纹图谱和荧光数据,成像速度提高了7倍以上。最后,我们应用了飞行扫描X使用10 keV X射线对未薄的集成电路(IC)进行X射线刻印术,并且能够以11.6 nm的高分辨率查看厚IC芯片内的电路细节。所有这些成就为没有镜头施加的分辨率限制的高速X射线成像指明了方向。

著录项

  • 作者

    Deng, Junjing.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Optics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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