Demonstration of five-layer phase-flat achromatic half-wave plate with anti-reflective structures and superconducting magnetic bearing for CMB polarization experiments

K. Komatsu, H. Ishino, H. Kataza, K. Konishi, M. Kuwata-Gonokami, N. Katayama, S. Sugiyama, T. Matsumura, H. Sakurai, Y. Sakurai, R. Takaku, J. Yumoto
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引用次数: 4

Abstract

We have developed a prototype half-wave plate (HWP) based polarization modulator (PMU) for Cosmic Microwave Background polarization measurement experiments. We built a 1/10 scaled PMU that consists of a 50 mm diameter five-layer achromatic HWP with a moth-eye broadband anti-reflection sub-wavelength structure mounted on a superconducting magnetic bearing. The entire system has cooled below 20 K in a cryostat chamber that has two millimeter-wave transparent windows. A coherent source and the diode detector are placed outside of the cryostat and the millimeter-wave goes through the PMU in the cryostat. We have measured the modulated signal by the PMU, analyzed the spectral signatures, and extracted the modulation efficiency over the frequency coverage of 34-161 GHz. We identified the peaks in the optical data, which are synchronous to the rotational frequency. We also identified the peaks that are originated from the resonance frequency of the levitating system. We also recovered the modulation efficiency as a function of the incident electromagnetic frequency and the data agrees to the predicted curves within uncertainties of the input parameters, i.e. the indices of refraction, thickness, and angle alignment. Finally, we discuss the implication of the results when this is applied to the LiteBIRD low-frequency telescope.
微波背景偏振实验用五层抗反射结构消色差半波片超导磁轴承的演示
研制了一种半波片偏振调制器(PMU)样机,用于宇宙微波背景偏振测量实验。我们构建了一个1/10比例的PMU,该PMU由直径50 mm的五层消色差HWP和蛾眼宽带抗反射亚波长结构组成,安装在超导磁轴承上。整个系统在具有两个毫米波透明窗口的低温恒温室中冷却到20k以下。在低温恒温器外部放置相干源和二极管检测器,毫米波穿过低温恒温器中的PMU。利用PMU对调制信号进行了测量,分析了频谱特征,提取了34 ~ 161ghz频率范围内的调制效率。我们确定了光学数据中的峰值,这些峰值与旋转频率同步。我们还确定了源自悬浮系统共振频率的峰值。我们还恢复了调制效率作为入射电磁频率的函数,并且在输入参数(即折射率,厚度和角度对准指数)不确定的情况下,数据符合预测曲线。最后,讨论了该结果在LiteBIRD低频望远镜上的应用意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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