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Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment

Publication ,  Journal Article
Suzuki, A; Cothard, N; Lee, AT; Niemack, MD; Raum, C; Renzullo, M; Sasse, T; Stevens, J; Truitt, P; Vavagiakis, E; Vivalda, J; Westrook, B ...
Published in: Journal of Low Temperature Physics
May 1, 2020

We report on the development of commercially fabricated multi-chronic antenna-coupled transition edge sensor (TES) bolometer arrays for cosmic microwave background (CMB) polarimetry experiments. The orders of magnitude increase in detector count for next-generation CMB experiments require a new approach in detector wafer production to increase fabrication throughput. We describe collaborative efforts with a commercial superconductor electronics fabrication facility (SeeQC, Inc.) to fabricate antenna-coupled TES bolometer detectors. We have successfully fabricated an operational dual-polarization, dichroic sinuous antenna-coupled TES detector array on a 150-mm-diameter wafer. The fabricated detector arrays have average yield of 95% and excellent uniformity across the wafer. Both RF characteristics and TES bolometer properties are suitable for CMB observations. We successfully fabricated different types of TES bolometers optimized for frequency multiplexing readout, time-domain multiplexing readout, and microwave SQUID multiplexing readout. We also demonstrated high production throughput. We discuss the motivation, design considerations, fabrication processes, test results, and how industrial detector fabrication could be a path to fabricate hundreds of detector wafers for future CMB polarimetry experiments.

Duke Scholars

Published In

Journal of Low Temperature Physics

DOI

EISSN

1573-7357

ISSN

0022-2291

Publication Date

May 1, 2020

Volume

199

Issue

3-4

Start / End Page

1158 / 1166

Related Subject Headings

  • General Physics
  • 5104 Condensed matter physics
  • 5103 Classical physics
  • 0204 Condensed Matter Physics
  • 0203 Classical Physics
  • 0105 Mathematical Physics
 

Citation

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Suzuki, A., Cothard, N., Lee, A. T., Niemack, M. D., Raum, C., Renzullo, M., … Yohannes, D. (2020). Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment. Journal of Low Temperature Physics, 199(3–4), 1158–1166. https://doi.org/10.1007/s10909-019-02325-0
Suzuki, A., N. Cothard, A. T. Lee, M. D. Niemack, C. Raum, M. Renzullo, T. Sasse, et al. “Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment.” Journal of Low Temperature Physics 199, no. 3–4 (May 1, 2020): 1158–66. https://doi.org/10.1007/s10909-019-02325-0.
Suzuki A, Cothard N, Lee AT, Niemack MD, Raum C, Renzullo M, et al. Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment. Journal of Low Temperature Physics. 2020 May 1;199(3–4):1158–66.
Suzuki, A., et al. “Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment.” Journal of Low Temperature Physics, vol. 199, no. 3–4, May 2020, pp. 1158–66. Scopus, doi:10.1007/s10909-019-02325-0.
Suzuki A, Cothard N, Lee AT, Niemack MD, Raum C, Renzullo M, Sasse T, Stevens J, Truitt P, Vavagiakis E, Vivalda J, Westrook B, Yohannes D. Commercially Fabricated Antenna-Coupled Transition Edge Sensor Bolometer Detectors for Next-Generation Cosmic Microwave Background Polarimetry Experiment. Journal of Low Temperature Physics. 2020 May 1;199(3–4):1158–1166.
Journal cover image

Published In

Journal of Low Temperature Physics

DOI

EISSN

1573-7357

ISSN

0022-2291

Publication Date

May 1, 2020

Volume

199

Issue

3-4

Start / End Page

1158 / 1166

Related Subject Headings

  • General Physics
  • 5104 Condensed matter physics
  • 5103 Classical physics
  • 0204 Condensed Matter Physics
  • 0203 Classical Physics
  • 0105 Mathematical Physics