Development of an optical detector testbed for the Simons Observatory

J. Seibert, P. Ade, Aamir Ali, K. Arnold, N. Cothard, N. Galitzki, K. Harrington, S. Ho, B. Keating, L. Lowry, Megan B. Russell, M. Silva-Feaver, Praweeen Siritanasak, G. Teply, C. Tucker, E. Vavagiakis, Zhilei Xu, Zhilei Xu
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引用次数: 1

Abstract

The Simons Observatory (SO) is a cosmic microwave background (CMB) survey experiment with three small-aperture telescopes and one large-aperture telescope, which will observe from the Atacama Desert in Chile. In total, SO will field over 60,000 transition edge sensor (TES) bolometers in six spectral bands centered between 27 and 280 GHz in order to achieve the sensitivity necessary to measure or constrain numerous cosmological quantities, as outlined in The Simons Observatory Collaboration et al. (2019). To verify consistency of fabrication and performance in line with our sensitivity requirements, we will perform in-lab optical tests on isolated SO detectors as well as full detector arrays. The tests include beam measurements, bandpass measurements, and polarization measurements, among others. Here, we will describe the development of a cryogenic testbed that enables optical characterization of SO's detectors. We include the infrared filtering strategy to allow suitable cryogenic performance, design and implementation of the test equipment used in characterization, and the preliminary results from our validation of the testbed's cryo-optical performance.
西蒙斯天文台光学探测器试验台的研制
西蒙斯天文台(SO)是一个宇宙微波背景(CMB)调查实验,由三个小口径望远镜和一个大口径望远镜组成,将在智利的阿塔卡马沙漠进行观测。总体而言,SO将在以27至280 GHz为中心的六个光谱带中部署超过60,000个过渡边缘传感器(TES)辐射热计,以达到测量或约束众多宇宙学量所需的灵敏度,如西蒙斯天文台合作等人(2019)所述。为了验证制造和性能的一致性符合我们的灵敏度要求,我们将对隔离的SO探测器以及完整的探测器阵列进行实验室光学测试。测试包括光束测量、带通测量和偏振测量等。在这里,我们将描述一个低温试验台的发展,使光学表征的SO的探测器。我们包括红外滤波策略,以实现合适的低温性能,用于表征的测试设备的设计和实现,以及我们对试验台低温光学性能验证的初步结果。
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