Soft-X-Ray Projection Imaging Using a 1:1 Ring-Field Optic

A. MacDowell, J. Bjorkholm, K. Early, R. Freeman, M. Himel, P. Mulgrew, L. Szeto, D. Taylor, D. Tennant, O. Wood, J. Bokor, L. Eichner, T. Jewell, W. Waskiewicz, D. White, D. Windt, F. Zernike
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Abstract

The first demonstration of diffraction-limited imaging at 14 nm in the soft-x-ray region, which resulted in the printing of 0.05 μm wide lines and spaces in a 60 nm thick film of PMMA resist, was produced using a multilayer-coated 20:1 reduction Schwarzschild optic.1 Unfortunately, a Schwarzschild optic possesses a central obscuration and a small image field and, hence, is not a very practical camera. A slightly more complicated optical system, but one that has already been used in a practical camera at visible wavelengths, is the 1:1 Offner ring- field optic.2 In theory a 0.0835 NA ring-field optic should be able to image 0.1 μm lines and spaces in a 100 micron wide 50 mm radius ring-shaped field at high contrast when illuminated with radiation at wavelengths shorter than 15 nm.3 In fact, an iridium-coated Offner 1:1 ring field camera was recently used to carry out projection imaging using 42 nm radiation from an undulator in the vacuum ultraviolet storage ring at Brookhaven National Laboratory.4
使用1:1环场光学的软x射线投影成像
采用多层涂层20:1还原史瓦西光学技术,首次在软x射线区域演示了14 nm衍射限制成像,结果在60 nm厚的PMMA抗光剂薄膜上打印出0.05 μm宽的线和空间不幸的是,史瓦西光学具有中心遮挡和小图像场,因此,不是一个非常实用的相机。还有一种稍微复杂一点的光学系统,它已经在实际的可见光相机中使用,那就是1:1的奥夫纳环场光学系统理论上,0.0835 NA的环场光学器件在波长小于15 nm的辐射照射下,应能在高对比度下成像100微米宽、半径50毫米的环形场中0.1 μm的线和空间事实上,最近在布鲁克海文国家实验室,一台涂有铱的Offner 1:1环现场相机使用来自真空紫外线储存环中的波动器的42 nm辐射进行投影成像
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