National Measurement Institute Australia, Bradfield Road, Lindfield, New South Wales 2070, Australia.
Opt Lett. 2012 Jul 1;37(13):2448-50. doi: 10.1364/OL.37.002448.
We present a method for the linearization and minimization of interferometer cyclic error. We utilize a polynomial curve fitting and resampling algorithm to correct for nonlinear mirror displacement. In the frequency domain, this algorithm compresses cyclic error into a single-frequency component and enables the precise measurement of cyclic error in a noise-dominated environment. We have applied the technique to determine the cyclic error for a range of interferometer components. In addition, we have used these measurements to optimize interferometer configuration and performance such that we routinely achieve a cyclic error of ∼50 pm for our custom Glan-Laser interferometer and ∼100 pm for a commercial interferometer.
我们提出了一种用于干涉仪循环误差线性化和最小化的方法。我们利用多项式曲线拟合和重采样算法来纠正非线性镜面位移。在频域中,该算法将循环误差压缩为单一频率分量,从而能够在噪声主导的环境中精确测量循环误差。我们已经将该技术应用于确定一系列干涉仪组件的循环误差。此外,我们还使用这些测量来优化干涉仪的配置和性能,从而使我们的定制格兰激光干涉仪通常能够达到约 50 pm 的循环误差,商业干涉仪能够达到约 100 pm 的循环误差。