红外静态微型干涉光谱仪的误差分析与光谱重建。

IF 3.3 2区 物理与天体物理 Q2 OPTICS Optics express Pub Date : 2025-01-27 DOI:10.1364/OE.547797
Yupeng Chen, Jinguang Lv, Baixuan Zhao, Yingze Zhao, Kaifeng Zheng, Yuxin Qin, Weibiao Wang, Haitao Nie, Wei Yue, Jingqiu Liang
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引用次数: 0

摘要

具有高光谱分辨率和高光谱精度的科学级光谱仪是小型化光学系统中需要的,以保持稳定和实时的光谱采样。利用高精度运动反射镜的傅立叶变换光谱仪通常难以提高其小型化和稳定的实时性能。提出了一种以微纳光学器件为核心的静态干涉和轻量化成像的静态红外光谱测量方法。微/纳米步进镜的使用允许光谱的瞬时采样。通过采用微/纳米透镜阵列,可以完成每个光谱通道的干涉成像。光谱仪的全静态微/纳米光学结构使其体积和重量减少了一半以上。通过全联动光场传输模型进行光学误差分析,提高了设计和制造的精度。提出了一种图像边缘检测辅助的光谱反演算法,并对该算法的采样稳定性和重建精度进行了验证。干扰强度采样的重复性精度超过2%,重建光谱的峰值精度超过分辨率。
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Error analysis and spectral reconstruction of an infrared static miniature interferometric spectrometer.

Scientific-grade spectrometers with high hyperspectral resolution and high spectral accuracy are desirable in miniaturized optical systems to maintain stable and real-time spectral sampling. Fourier transform spectrometers that utilize high-precision moving mirrors generally struggle to enhance their miniaturization and stable real-time performance. A static infrared spectral measurement method is proposed that uses micro/nano-optical devices as the core of static interference and lightweight imaging. The use of micro/nano step mirrors allows for the instantaneous sampling of spectra. By employing an array of micro/nano lenses, interference imaging for each spectral channel can be accomplished. The spectrometer's all-static micro/nano-optical structure results in a reduction in volume and weight of more than half. Enhanced precision in design and fabrication is achieved through optical error analysis via a full-linkage optical field transmission model. An image edge detection-assisted spectral inversion algorithm is proposed, and the sampling stability and reconstruction accuracy are verified. The repeatability accuracy of interference intensity sampling surpasses 2%, and the peak accuracy of the reconstructed spectrum exceeds the resolution.

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来源期刊
Optics express
Optics express 物理-光学
CiteScore
6.60
自引率
15.80%
发文量
5182
审稿时长
2.1 months
期刊介绍: Optics Express is the all-electronic, open access journal for optics providing rapid publication for peer-reviewed articles that emphasize scientific and technology innovations in all aspects of optics and photonics.
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