论文标题

Scexo-Charis光谱模式的仪器极化效应的校准

Calibration of the instrumental polarization effects of SCExAO-CHARIS' spectropolarimetric mode

论文作者

van Holstein, Rob G., Bos, Steven P., Ruigrok, Jasper, Lozi, Julien, Guyon, Olivier, Norris, Barnaby, Snik, Frans, Chilcote, Jeffrey, Currie, Thayne, Groff, Tyler D., Hart, Joost 't, Jovanovic, Nemanja, Kasdin, Jeremy, Kudo, Tomoyuki, Martinache, Frantz, Mazin, Ben, Sahoo, Ananya, Tamura, Motohide, Vievard, Sébastien, Walter, Alex, Zhang, Jin

论文摘要

Subaru望远镜的Scexao是一种可见且近红外的高对比度成像仪器,采用了极端的自适应光学和Coronagraphy。该仪器将近红外光(JHK)馈入整体场光谱仪Charis。最近,沃拉斯顿(Wollaston)的棱镜被添加到了Charis的光学路径中,使Charis具有光谱学能力,在高对比度成像仪器中是独一无二的。我们提出了一个详细的Mueller矩阵模型,该模型描述了完整光学路径的仪器极化效应,因此望远镜和仪器。 Charis的22个波长箱为详细研究仪器极化效应的波长依赖性提供了独特的机会。从内部光源的测量值中,我们发现图像偏离器(k-mirror)会产生强波长依赖性的串扰,在最坏的情况下,将〜95%的入射线性极化转换为无法测量的圆形极化光。理论计算表明,望远镜的仪器极化的幅度随波长在大约0.5%和0.7%之间变化,其角度完全等于望远镜的高度角。我们计划更准确地确定望远镜的仪器极化,并观察到极化标准恒星,并将更全面的物理模型适合所有实验数据。此外,我们计划将完整的Mueller矩阵模型集成到现有的CAHIS后处理管道中,以实现线性极化程度的极化精度<0.1%。我们对Charis光谱模式的校准将实现对星际磁盘和行星和棕色矮人伴侣的独特定量极化研究。

SCExAO at the Subaru telescope is a visible and near-infrared high-contrast imaging instrument employing extreme adaptive optics and coronagraphy. The instrument feeds the near-infrared light (JHK) to the integral field spectrograph CHARIS. Recently, a Wollaston prism was added to CHARIS' optical path, giving CHARIS a spectropolarimetric capability that is unique among high-contrast imaging instruments. We present a detailed Mueller matrix model describing the instrumental polarization effects of the complete optical path, thus the telescope and instrument. The 22 wavelength bins of CHARIS provide a unique opportunity to investigate in detail the wavelength dependence of the instrumental polarization effects. From measurements with the internal light source, we find that the image derotator (K-mirror) produces strong wavelength-dependent crosstalk, in the worst case converting ~95% of the incident linear polarization to circularly polarized light that cannot be measured. Theoretical calculations show that the magnitude of the instrumental polarization of the telescope varies with wavelength between approximately 0.5% and 0.7%, and that its angle is exactly equal to the altitude angle of the telescope. We plan to more accurately determine the instrumental polarization of the telescope with observations of a polarization standard star, and fit more comprehensive physical models to all experimental data. In addition, we plan to integrate the complete Mueller matrix model into the existing CHARIS post-processing pipeline, with the aim to achieve a polarimetric accuracy of <0.1% in the degree of linear polarization. Our calibrations of CHARIS' spectropolarimetric mode will enable unique quantitative polarimetric studies of circumstellar disks and planetary and brown dwarf companions.

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