Experimental Analysis of the Spectral Reflectivity of Metallic Blazed Diffraction Gratings in the THz Range for Space Instrumentation

IF 3.9 2区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Terahertz Science and Technology Pub Date : 2024-11-07 DOI:10.1109/TTHZ.2024.3493001
Gonzalo García-Lozano;Guillermo Mercant;Marianela Fernández-Rodríguez;María Carmen Torquemada;Luis M. González;Tomás Belenguer;Alexander Cuadrado;Luis Miguel Sánchez-Brea;Javier Alda;Mahmoud Elshorbagy
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Abstract

The core of spectrometers for deep space exploration in the far-infrared spectral range is a diffraction grating optimized for a defined range of wavelengths. This contribution presents an in-depth analysis of the fabrication, morphological characterization, and spectral efficiency verification of this type of gratings operating in the THz range. Two different manufacturing techniques were used: the first one was laser ablation and microstructuring with a five-axis femtosecond laser system, and the second one was a traditional micromachining technique using milling tools. The gratings have a blazed geometry with saw-tooth profiles that enhances the efficiency of the diffracted order of interest, $m=1$ , at the TM polarization mode, and within a spectral range between 70 and 114 $\mu$ m. The morphological features of the fabricated gratings were measured by confocal microscopy and analyzed using topographic parameters. The measured averaged profiles were used to compute the diffraction efficiency of the fabricated gratings and to compare the actual manufactured profiles against the experimental results. Our measurement setup fixes the wavelength of the illuminating source to six values between 60 and 120 $\mu$ m (2.5 and 4.7 THz). At each of these spectral lines, we have scanned the angle of incidence between 20 $^\circ$ and 75 $^\circ$ . This angular range includes the nominal value of the angle of incidence, $\theta _\mathrm{inc}=57^\circ$ . The experimental values of efficiency can be easily compared with those resulting from computation, where the efficiency is calculated for each one of the available wavelengths as a function of the angle of incidence. This approach has allowed us to validate the design and conclude that gratings fabricated using femtosecond laser ablation perform better than those obtained through micromachining processes. In any case, both manufacturing techniques generate gratings above the validation threshold for diffraction efficiency, $\eta > 0.65$ .
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空间仪器金属燃烧衍射光栅太赫兹波段光谱反射率的实验分析
深空探测远红外光谱仪的核心是在一定波长范围内优化的衍射光栅。这篇文章深入分析了在太赫兹范围内工作的这种类型光栅的制造、形态表征和光谱效率验证。采用两种不同的制造技术:第一种是利用五轴飞秒激光系统进行激光烧蚀和微结构加工,第二种是利用铣刀进行传统的微加工技术。光栅具有锯齿形的几何形状,在TM偏振模式下,在70到114 $\mu$ m的光谱范围内,提高了感兴趣的衍射顺序$m=1$的效率。用共聚焦显微镜测量了制造光栅的形态特征,并使用地形参数进行了分析。用测量的平均轮廓计算了光栅的衍射效率,并将实际制造的轮廓与实验结果进行了比较。我们的测量装置将照明光源的波长固定在60和120 $\mu$ m(2.5和4.7太赫兹)之间的六个值。在每条光谱线上,我们扫描了20 $^\circ$到75 $^\circ$之间的入射角。这个角度范围包括入射角的标称值$\theta _\mathrm{inc}=57^\circ$。效率的实验值可以很容易地与计算结果进行比较,计算结果是计算每个可用波长的效率作为入射角的函数。这种方法使我们能够验证设计,并得出结论,使用飞秒激光烧蚀制作的光栅比通过微加工工艺获得的光栅性能更好。在任何情况下,两种制造技术产生的光栅都高于衍射效率的验证阈值$\eta > 0.65$。
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来源期刊
IEEE Transactions on Terahertz Science and Technology
IEEE Transactions on Terahertz Science and Technology ENGINEERING, ELECTRICAL & ELECTRONIC-OPTICS
CiteScore
7.10
自引率
9.40%
发文量
102
期刊介绍: IEEE Transactions on Terahertz Science and Technology focuses on original research on Terahertz theory, techniques, and applications as they relate to components, devices, circuits, and systems involving the generation, transmission, and detection of Terahertz waves.
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Editorial Table of Contents IEEE Microwave Theory and Techniques Society Information IEEE Transactions on Terahertz Science and Technology Information for Authors TechRxiv: Share Your Preprint Research with the World!
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