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Optimal design of a gravitational wave telescope system for the suppression of stray light
Liang, Rong1,2; Zhou, Xiaojun1; Xu, Huangrong1; Wu, Dengshan1; Li, Chenxi1; Yu, Weixing1,2
作者部门光谱成像技术研究室
2024-03-10
发表期刊Applied Optics
ISSN1559128X;21553165
卷号63期号:8页码:1995-2003
产权排序1
摘要

For gravitational wave detection, the telescope is required to have an ultra-low wavefront error and ultra-high signal-to-noise ratio, where the power of the stray light should be controlled on the order of less than 10-10. In this work, we propose an alternative stray light suppression method for the optical design of an off-axis telescope with four mirrors by carefully considering the optimal optical paths. The method includes three steps. First, in the period of the optical design, the stray light caused by the tertiary mirror and the quaternary mirror is suppressed by increasing the angle formed by the optical axes of the tertiary mirror and the quaternary mirror and reducing the radius of curvature of the quaternary mirror as much as possible to make sure the optical system provides a beam quality with a wavefront error less than λ/80. Next, the stray light could satisfy the requirement of the order of 10-10 when the level of roughness reaches 0.2 nm, and the pollution of mirrors is controlled at the level of CL100. Finally, traditional stray light suppression methods should also be applied to mechanics, including the use of the optical barrier, baffle tube, and black paint. It can be seen that the field stop can efficiently reduce stray light caused by the secondary mirror by more than 55% in the full field of view. The baffle tube mounted on the position of the exit pupil can reduce the overall stray light energy by 5%, and the difference between the ideal absorber (absorption coefficient is 100%) and the actual black paint (absorption coefficient is 90%) is 3.2%. These simulation results are confirmed by theMonte Carlo method for a stray light analysis. Based on the above results, one can conclude that the geometry structure of the optical design, the quality of mirrors, and the light barrier can greatly improve the stray light suppression ability of the optical system, which is vital when developing a gravitational wave telescope with ultra-lowstray light energy. © 2024 Optica Publishing Group.

DOI10.1364/AO.502610
收录类别SCI ; EI
语种英语
WOS记录号WOS:001225880700003
EI入藏号20241215786774
引用统计
被引频次:1[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://ir.opt.ac.cn/handle/181661/97286
专题光谱成像技术研究室
通讯作者Yu, Weixing
作者单位1.Key Laboratory of Spectral Imaging Technology of Chinese Academy of Sciences, Xi’an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, No. 17, Xinxi Road, Xian; 710119, China;
2.Center of Mechanics Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing; 100049, China
推荐引用方式
GB/T 7714
Liang, Rong,Zhou, Xiaojun,Xu, Huangrong,et al. Optimal design of a gravitational wave telescope system for the suppression of stray light[J]. Applied Optics,2024,63(8):1995-2003.
APA Liang, Rong,Zhou, Xiaojun,Xu, Huangrong,Wu, Dengshan,Li, Chenxi,&Yu, Weixing.(2024).Optimal design of a gravitational wave telescope system for the suppression of stray light.Applied Optics,63(8),1995-2003.
MLA Liang, Rong,et al."Optimal design of a gravitational wave telescope system for the suppression of stray light".Applied Optics 63.8(2024):1995-2003.
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