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Simons Observatory Microwave SQUID Multiplexing Readout -- Cryogenic RF Amplifier and Coaxial Chain Design

Authors :
Rao, Mayuri Sathyanarayana
Silva-Feaver, Maximiliano
Ali, Aamir
Arnold, Kam
Ashton, Peter
Dober, Bradley J.
Duell, Cody J.
Duff, Shannon M.
Galitzki, Nicholas
Healy, Erin
Henderson, Shawn
Ho, Shuay-Pwu Patty
Hoh, Jonathan
Kofman, Anna M.
Kusaka, Akito
Lee, Adrian T.
Mangu, Aashrita
Mathewson, Justin
Mauskopf, Philip
McCarrick, Heather
Moore, Jenna
Niemack, Michael D.
Raum, Christopher
Salatino, Maria
Sasse, Trevor
Seibert, Joseph
Simon, Sara M.
Staggs, Suzanne
Stevens, Jason R.
Teply, Grant
Thornton, Robert
Ullom, Joel
Vavagiakis, Eve M.
Westbrook, Benjamin
Xu, Zhilei
Zhu, Ningfeng
Source :
Journal of Low Temperature Physics, (2020), 1-10
Publication Year :
2020

Abstract

The Simons Observatory (SO) is an upcoming polarization-sensitive Cosmic Microwave Background (CMB) experiment on the Cerro Toco Plateau (Chile) with large overlap with other optical and infrared surveys (e.g., DESI, LSST, HSC). To enable the readout of \bigO(10,000) detectors in each of the four telescopes of SO, we will employ the microwave SQUID multiplexing technology. With a targeted multiplexing factor of \bigO{(1,000)}, microwave SQUID multiplexing has never been deployed on the scale needed for SO. Here we present the design of the cryogenic coaxial cable and RF component chain that connects room temperature readout electronics to superconducting resonators that are coupled to Transition Edge Sensor bolometers operating at sub-Kelvin temperatures. We describe design considerations including cryogenic RF component selection, system linearity, noise, and thermal power dissipation.<br />Comment: 10 pages, 2 figures

Details

Database :
arXiv
Journal :
Journal of Low Temperature Physics, (2020), 1-10
Publication Type :
Report
Accession number :
edsarx.2003.08949
Document Type :
Working Paper
Full Text :
https://doi.org/10.1007/s10909-020-02429-y