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锯齿形折射 X 射线透镜的像差及其消除。

On aberrations in saw-tooth refractive X-ray lenses and on their removal.

机构信息

Sincotrone Trieste ScpA, SS 14 km 163.5, I-34012 Basovizza (TS), Italy.

出版信息

J Synchrotron Radiat. 2011 Mar;18(Pt 2):198-211. doi: 10.1107/S090904951005332X. Epub 2011 Jan 20.

Abstract

The X-ray lens, which is composed of opposing canted saw-tooth structures, originally assembled from cut-out pieces from long-playing records, is understood by recognizing that an incident plane X-ray wave will traverse a varying number of triangular prisms in them. The refraction will deflect any beam towards the prism tips and the variation of the deflection angle, which grows linearly with the number of traversed prisms, can result in X-ray focusing. The structure offers focusing flexibility by simply changing the taper angle. This report will discuss the aberrations arising in the saw-tooth structure in its simplest form with identical prisms. It is found that the saw-tooth structures in low-Z materials with focal length below 1 m provide less flux density in the focal spot than stacks of one-dimensionally focusing refractive lenses with identical transmission function. This is due to excessive aberrations in the regular structure, which are absent in stacks of concave lenses, and which limit the focusing to spot sizes of just submicrometre dimensions, as measured experimentally for some lenses. It will be shown that this limitation can be overcome by appropriately modifying the prism shape. Then the image size could be reduced by about an order of magnitude to the diffraction limit with competitive numbers even below 0.1 µm. Microfabrication techniques are identified as the appropriate means for producing the structures.

摘要

X 射线透镜由相对倾斜的锯齿结构组成,最初由长时唱片裁剪而成。当入射平面 X 射线波穿过其中的多个三角棱镜时,人们就可以理解这一点。折射会使任何光束偏向棱镜尖端,而偏转角的变化与穿过的棱镜数量呈线性关系,这可能导致 X 射线聚焦。通过简单地改变锥角,该结构提供了聚焦的灵活性。本报告将讨论最简单形式的锯齿结构中的像差,其中棱镜是相同的。研究发现,在焦距低于 1 m 的低 Z 材料中,锯齿结构在焦点处的通量密度低于具有相同传输函数的一维聚焦折射透镜的堆叠。这是由于规则结构中的像差过大,而在凹透镜的堆叠中则没有这些像差,这些像差将聚焦限制在仅亚微米级别的光斑尺寸,这已经通过一些透镜的实验测量得到证实。研究表明,通过适当修改棱镜形状可以克服这种限制。然后,通过使用竞争的数值甚至低于 0.1 µm,图像尺寸可以减小一个数量级,达到衍射极限。微加工技术被确定为制造这些结构的合适手段。

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