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首页> 外文期刊>Applied optics >Development of a position-velocity-time-modulated two-dimensional ion beam figuring system for synchrotron x-ray mirror fabrication
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Development of a position-velocity-time-modulated two-dimensional ion beam figuring system for synchrotron x-ray mirror fabrication

机译:Synchrotron X射线镜制造的位置 - 速度时调制的二维离子束图变量的研制

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With the rapid evolution of synchrotron x-ray sources, the demand for high-quality precision x-ray mirrors has greatly increased. Single nanometer shape accuracy is required to keep imaging capabilities at the diffraction limit. Ion beam figuring (IBF) has been used frequently for ultra-precision finishing of mirrors, but achieving the ultimate accuracy depends on three important points: careful alignment, accurate dwell time calculation and implementation, and accurate optical metrology. The Optical Metrology Group at National Synchrotron Light Source II has designed and built a position-velocity-time-modulated two-dimensional IBF system (PVT-IBF) with three novel characteristics: (1) a beam footprint on the mirror was used as a reference to align the coordinate systems between the metrology and the IBF hardware; (2) the robust iterative Fourier transform-based dwell time algorithm proposed by our group was applied to obtain an accurated well time map; and (3) the dwell time was then transformed to velocities and implemented with the PVT motion scheme. In this study, the technical aspects of the PVT-IBF systems are described in detail, followed by an experimental demonstration of the figuring results. In our first experiment, the 2D RMS in a 50mm x 5mm clear aperture was reduced from 3.4 to 1.1nm after one IBF run. In our second experiment, due to a 5mm pinhole installed in front of the source, the 2D RMS in a 50mm x 5mm clear aperture was reduced from 39.1 to 1.9nm after three IBF runs, demonstrating that our PVT-IBF solution is an effective and deterministic figuring process. (C) 2020 Optical Society of America
机译:随着Syschrotron X射线源的快速发展,对高质量精密X射线镜的需求大大增加。需要在衍射极限处保持成像能力所需的单纳米形状精度。离子束图(IBF)已被频繁用于镜子的超精密精加工,但实现最终的精度取决于三个重要点:仔细对准,准确的停留时间计算和实现,以及精确的光学计量。国家同步光源II的光学计量组设计并构建了具有三个新颖特性的位置 - 速度 - 时调制的二维IBF系统(PVT-IBF):(1)镜子上的梁脚印用作a参考对齐计量和IBF硬件之间的坐标系; (2)应用我们组提出的鲁棒迭代傅里叶变换的停留时间算法以获得精确的井时间映射;然后(3)然后将停留时间转化为速度并用PVT运动方案实现。在本研究中,详细描述了PVT-IBF系统的技术方面,然后进行了实验结果的实验​​结果。在我们的第一个实验中,50mm x 5mm透明光圈中的2D rms在一个IBF运行后从3.4降至1.1nm。在我们的第二个实验中,由于安装了5毫米的针孔,50mm×5mm透明光圈中的2D rms从39.1到1.9nm减少到39.1至1.9nm后,展示我们的PVT-IBF解决方案是有效的和确定性的计算过程。 (c)2020美国光学学会

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    《Applied optics》 |2020年第11期|共9页
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