论文标题

使用实验室来源的X射线光学元件的精确波前表征

Precise wavefront characterization of X-ray optical elements using a laboratory source

论文作者

Dresselhaus, J. L., Fleckenstein, H., Domaracky, M., Prasciolu, M., Ivanov, N., Carnis, J., Murray, K. T., Morgan, A. J., Chapman, H. N., Bajt, S.

论文摘要

X射线光学元件的改进取决于其光学性能的测量。例如,可以使用波前畸变的知识来改善光学元素的制造或设计相校正器以补偿这些错误。如今,使用强烈的X射线源(例如同步物)进行此类光学的表征。但是,对这些设施的有限访问可以大大减慢开发过程。基于实验室的X射线微型源的亮度以及新的计量方法的开发,尤其是Ptychographic X射线斑点跟踪的亮度,可以在实验室中以精确性和灵敏度在实验室中表征X射线光学元件。在这里,我们提出了一种利用市售X射线源的实验室设置,可用于表征不同类型的X射线光学器件。该设置在我们的实验室中常规使用,以表征高数值光圈和其他光学元件的多层LAUE透镜。这通常包括测量波前变形,最佳的工作光子能量和镜头的焦距。为了检查该实验室设置的灵敏度和准确性,我们将结果与在同步加速器上获得的结果进行了比较,并且没有显着差异。为了说明对性能的测量结果的反馈,我们证明了使用3D打印的化合物折射板对特定多层LAUE透镜的相误差进行了校正。

Improvements in X-ray optics critically depend on the measurement of their optical performance. The knowledge of wavefront aberrations, for example, can be used to improve the fabrication of optical elements or to design phase correctors to compensate for these errors. Nowadays, the characterization of such optics is made using intense X-ray sources such as synchrotrons. However, the limited access to these facilities can substantially slow down the development process. Improvements in the brightness of lab-based X-ray micro-sources in combination with the development of new metrology methods, and in particular ptychographic X-ray speckle tracking, enable characterization of X-ray optics in the lab with a precision and sensitivity not possible before. Here, we present a laboratory set-up that utilizes a commercially available X-ray source and can be used to characterize different types of X-ray optics. The set-up is used in our laboratory on a routine basis to characterize multilayer Laue lenses of high numerical aperture and other optical elements. This typically includes measurements of the wavefront distortions, optimum operating photon energy and focal length of the lens. To check the sensitivity and accuracy of this laboratory set-up we compared the results to those obtained at the synchrotron and saw no significant difference. To illustrate the feedback of measurements on performance, we demonstrated the correction of the phase errors of a particular multilayer Laue lens using a 3D printed compound refractive phase plate.

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