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Wave-optical simulation of hard-x-ray nanofocusing by precisely figured elliptical mirrors

机译:精确绘制的椭圆镜对硬X射线纳米聚焦的波光学模拟

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摘要

Computer simulations of nanofocusing by elliptical mirrors are presented wherein the diffraction and propagation of coherent hard x rays are predicted using wave-optical calculations. Surface height data acquired via microstitching interferometry were used to calculate the complex pupil function of a mirror, taking into account the Fresnel reflectivity and treating the surface topography as an aberration to a perfect elliptical mirror. The reflected wave-field amplitude and phase downstream of the mirror were obtained by numerically evaluating the Fresnel-Kirchhoff diffraction integral. Simulated intensity profiles and contours (isophotes) around the focal plane are presented for coherent illumination by a 15 keV point source, which indicate nearly diffraction-limited focusing at the 40 nm level. The effect of high spatial frequency microroughness on nanofocusing was investigated by low-pass filtering the Fourier spectrum of the residual height profile. Simulations using the filtered metrology data confirmed that roughness length scales shorter than 0.1 mm have a minor effect on the focal spot size and intensity.
机译:提出了通过椭圆镜进行纳米聚焦的计算机模拟,其中使用波光学计算预测了相干硬X射线的衍射和传播。通过微缝制干涉术获得的表面高度数据用于计算反射镜的复杂光瞳函数,同时考虑了菲涅耳反射率并将表面形貌视为与理想椭圆形反射镜的像差。通过数值评估菲涅耳-基尔霍夫衍射积分获得反射镜下游的反射波场振幅和相位。给出了焦平面周围的模拟强度分布和轮廓(等离子),用于15 keV点光源的相干照明,这表明在40 nm的水平上几乎受衍射限制。通过对残留高度分布的傅立叶光谱进行低通滤波,研究了高空间频率显微粗糙度对纳米聚焦的影响。使用过滤后的计量数据进行的模拟证实,粗糙度长度标度短于0.1 mm对焦斑大小和强度影响较小。

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