利用空间光调制器可重构正弦相位校准干涉仪传递函数。

IF 3.3 2区 物理与天体物理 Q2 OPTICS
Optics letters Pub Date : 2025-08-01 DOI:10.1364/OL.564703
Antong Huang, Shuai Xue, Yunfeng Mao
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引用次数: 0

摘要

最近,主要由x射线和极紫外镜提出的极端表面形状测量精度要求引起了人们对干涉仪仪器传递函数(ITF)校准的极大兴趣。然而,目前还没有规范定义的ITF校准方法,部分原因是需要制造大量不同参数的结构,而结构本身的制造难度较大。提出了一种利用高分辨率空间光调制器(SLM)校准ITF的可重构正弦相位(RSP)方法。将固有的波前畸变补偿到单纳米PV和亚纳米RMS,避免了高精度平板的制作。可以灵活地生成具有不同空间频率和幅值的多个正弦相位。验证了RSP ITF标定结果的重复性和保真度。结果表明,RSP方法是一种很有前途的ITF校准方法,符合ISO对ITF的定义,并为研究适合单个仪器的ITF校准结构设计提供了可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calibration of interferometer instrument transfer function using reconfigurable sinusoidal phase via spatial light modulator.

Extreme surface form measurement accuracy requirements, mainly posed by X-ray and extreme ultraviolet mirrors, have recently inspired great interest in the calibration of the instrument transfer function (ITF) of interferometers. However, no normatively defined ITF calibration method exists, partially due to the fact that a large number of structures with different parameters should be fabricated and the fabrication of the structures itself is difficult. A reconfigurable sinusoidal phase (RSP) method utilizing a high-resolution spatial light modulator (SLM) for ITF calibration is proposed. The inherent wavefront distortion can be compensated to single-nanometer PV and sub-nanometer RMS, which avoids fabricating the high-accuracy flat plate. A number of sinusoidal phases with different spatial frequencies and amplitudes can be flexibly generated. The repeatability and fidelity of the RSP ITF calibration results are verified. The results show that the RSP method is a promising ITF calibration method that accords with the ISO definition of ITF, and it makes it possible to investigate the adequate ITF calibration structure design for individual instruments.

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来源期刊
Optics letters
Optics letters 物理-光学
CiteScore
6.60
自引率
8.30%
发文量
2275
审稿时长
1.7 months
期刊介绍: The Optical Society (OSA) publishes high-quality, peer-reviewed articles in its portfolio of journals, which serve the full breadth of the optics and photonics community. Optics Letters offers rapid dissemination of new results in all areas of optics with short, original, peer-reviewed communications. Optics Letters covers the latest research in optical science, including optical measurements, optical components and devices, atmospheric optics, biomedical optics, Fourier optics, integrated optics, optical processing, optoelectronics, lasers, nonlinear optics, optical storage and holography, optical coherence, polarization, quantum electronics, ultrafast optical phenomena, photonic crystals, and fiber optics. Criteria used in determining acceptability of contributions include newsworthiness to a substantial part of the optics community and the effect of rapid publication on the research of others. This journal, published twice each month, is where readers look for the latest discoveries in optics.
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