论文标题

LiteBird的低频望远镜焦平面检测器模块的开发

Development of the Low Frequency Telescope Focal Plane Detector Modules for LiteBIRD

论文作者

Westbrook, Benjamin, Raum, Christopher, Beckman, Shawn, Lee, Adrian T., Farias, Nicole, Bogdan, Andrew, Hornsby, Amber, Suzuki, Aritoki, Rotermund, Kaja, Elleflot, Tucker, Austermann, Jason E., Beall, James A., Duff, Shannon M., Hubmayr, Johannes, Vissers, Michael R., Link, Michael J., Jaehnig, Greg, Halverson, Nils, Ghigna, Tomasso, Hazumi, Masashi, Stever, Samantha, Minami, Yuto, Thompson, Keith L., Russell, Megan, Arnold, Kam, Silva-Feaver, Maximiliano

论文摘要

Litebird是由Jaxa领导的战略大型卫星任务,旨在测量2020年代后期从L2的整个天空中宇宙微波背景和银河前景的极化。科学有效载荷包括三个望远镜,这些望远镜称为低,中和高频望远镜,每个望远镜都带有自己的接收器,覆盖了任务频率范围的一部分。低频望远镜将从银河前景和宇宙微波背景绘制同步辐射。我们讨论了低频望远镜的低频焦平面模块的设计,制造和表征,该模块的总带宽范围为34至161 GHz。总共将有4种不同的像素类型,其中包括8个重叠频带,以覆盖整个频率范围。这些模块位于单个低频焦平面单元中,该单元为探测器提供热分离,机械支撑和辐射阻碍。该模块设计实现了多核耦合的弯曲天线阵列,该阵列与过渡边缘传感器垫圈相连,并使用频域mulitplexing读出。尽管该技术在基于地面的宇宙微波背景实验中具有强大的遗产,但频率覆盖率,低光负载条件以及空间环境的高宇宙射线背景需要进一步开发该技术,以适合Litebird。在这些程序中,我们讨论了以78、100和140 GHz为中心的频带的三环原型像素的光学和验光表征。

LiteBIRD is a JAXA-led strategic large-class satellite mission designed to measure the polarization of the cosmic microwave background and Galactic foregrounds from 34 to 448 GHz across the entire sky from L2 in the late 2020s. The scientific payload includes three telescopes which are called the low-, mid-, and high-frequency telescopes each with their own receiver that covers a portion of the mission's frequency range. The low frequency telescope will map synchrotron radiation from the Galactic foreground and the cosmic microwave background. We discuss the design, fabrication, and characterization of the low-frequency focal plane modules for low-frequency telescope, which has a total bandwidth ranging from 34 to 161 GHz. There will be a total of 4 different pixel types with 8 overlapping bands to cover the full frequency range. These modules are housed in a single low-frequency focal plane unit which provides thermal isolation, mechanical support, and radiative baffling for the detectors. The module design implements multi-chroic lenslet-coupled sinuous antenna arrays coupled to transition edge sensor bolometers read out with frequency-domain mulitplexing. While this technology has strong heritage in ground-based cosmic microwave background experiments, the broad frequency coverage, low optical loading conditions, and the high cosmic ray background of the space environment require further development of this technology to be suitable for LiteBIRD. In these proceedings, we discuss the optical and bolometeric characterization of a triplexing prototype pixel with bands centered on 78, 100, and 140 GHz.

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