亚毫米天文学中偏振测热计阵列的片上光谱解决方案

T. Tollet, S. Bounissou, A. Aliane, C. Delisle, L. Dussopt, V. Goudon, H. Kaya, G. Lasfargues, A. Poglitsch, V. Révéret, L. Rodriguez
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摘要

研究开发了两种基于Fabry-Perot干涉仪原理的全硅片上光谱仪技术,目标波长为158µm ([CII])。我们正在开发这些光谱功能,目标是将它们包括在50mK冷却的偏振检测器阵列中。第一个解决方案是一个可调腔法布里-珀罗与硅镜由深冷压电电机驱动的亚微米步长。每个镜子都是由硅和空气的四分之一波层组成的介电布拉格结构,提供高反射率而没有金属损耗。在低温傅里叶变换测量中证实了具有这种布拉格镜的法布里-珀罗谐振器的理论性能:该干涉仪的精细度是传统法布里-珀罗干涉仪的两倍以上。第二种解决方案是一个固定的法布里-珀罗阵列,它带有硅微结构腔,允许在不同区域具有不同的光学指数。该空腔由深蚀刻硅微结构制成,其截面适合于获得足够的光学指数。因此,分布在阵列上的多个波长在158µm左右,通过该法布里-珀罗传输。该光谱仪的反射镜是金属电容网格,在目标波长处具有高反射性,易于制造,金属损耗减少。仿真结果表明,该方法具有较高的分辨率,接近于Bragg反射镜法布里-佩罗反射镜。该溶液的第一个原型已由CEA/LETI制造,并将很快在萨克雷的低温设施中进行测量。
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On-chip spectroscopic solutions for polarimetric bolometer arrays in submillimeter astronomy
Two technologies of all-silicon on-chip spectrometers based on the Fabry-Perot interferometer principle are studied and under development for a target wavelength of 158µm ([CII]). We are developing these spectroscopic capabilities with the objective of including them in polarimetric detector arrays cooled at 50mK. The first solution is a tunable cavity Fabry-Perot with silicon mirrors driven by cryogenic piezoelectric motors with a sub-micron step size. Each mirror is a dielectric Bragg structure made of quarter-wave layers of silicon and air providing a high reflectivity without metal losses. The theoretical performance of a Fabry-Perot resonator with such Bragg mirrors has been confirmed by measurement in a low temperature FTS: the finesse of this interferometer is more than twice that of a traditional Fabry-Perot. The second solution is a fixed Fabry-Perot array with a silicon microstructured cavity, which allows having different optical indices in different areas. The cavity is made of deep-etched silicon microstructures whose section is adapted to obtain the adequate optical index. Therefore, multiple wavelengths around 158µm, distributed on the array, are transmitted by this Fabry-Perot. The mirrors of this spectrometer are metallic capacitive grids designed to be highly reflective at the targeted wavelength, easy to manufacture with reduced metal losses. The simulations show high performances in resolution, close to the Bragg mirrors Fabry-Perot. The first prototypes of this solution have been manufactured by the CEA/LETI and will be soon measured in the cryogenic facilities in Saclay.
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