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光刻扫描机中晶圆台无几何误差的光栅干涉仪平移位移计算算法

Translational displacement computational algorithm of the grating interferometer without geometric error for the wafer stage in a photolithography scanner.

作者信息

Ye Weinan, Zhang Ming, Zhu Yu, Wang Leijie, Hu Jinchun, Li Xin, Hu Chuxiong

出版信息

Opt Express. 2018 Dec 24;26(26):34734-34752. doi: 10.1364/OE.26.034734.

Abstract

The translational displacement computational algorithm base on a novel phase-shift model is proposed eliminating the geometric error of the grating interferometer for precision positioning of a multi-degree-of-freedom motion stage. Firstly, the mechanism of the geometric error of the grating interferometer is analyzed, and the novel phase-shift model of the grating interferometer is constructed based on rigid body kinematics and affine geometry transformation. High accuracy of the model is demonstrated by ZEMAX simulation. Then, according to Taylor series expansion, the phase-shift model is simplified by polynomial regression to solve the problems of a large amount of computational effort and inability to derive the translational displacement computational algorithm. The availability and accuracy of the translational displacement computational algorithm are verified by ZEMAX simulation and experiment.

摘要

提出了一种基于新型相移模型的平移位移计算算法,以消除光栅干涉仪的几何误差,用于多自由度运动平台的精密定位。首先,分析了光栅干涉仪几何误差的机理,并基于刚体运动学和仿射几何变换构建了光栅干涉仪的新型相移模型。通过ZEMAX仿真验证了该模型的高精度。然后,根据泰勒级数展开,通过多项式回归对相移模型进行简化,以解决计算量过大和无法推导平移位移计算算法的问题。通过ZEMAX仿真和实验验证了平移位移计算算法的有效性和准确性。

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