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Characterization of Transition Edge Sensors for the Simons Observatory

Publication ,  Journal Article
Stevens, JR; Cothard, NF; Vavagiakis, EM; Ali, A; Arnold, K; Austermann, JE; Choi, SK; Dober, BJ; Duell, C; Duff, SM; Hilton, GC; Ho, SPP ...
Published in: Journal of Low Temperature Physics
May 1, 2020

The Simons Observatory is building both large (6 m) and small (0.5 m) aperture telescopes in the Atacama Desert in Chile to observe the cosmic microwave background CMB radiation with unprecedented sensitivity. Simons Observatory telescopes in total will use over 60,000 transition edge sensor (TES) detectors spanning center frequencies between 27 and 285 GHz and operating near 100 mK. TES devices have been fabricated for the Simons Observatory by NIST, Berkeley, and HYPRES/SeeQC corporation. Iterations of these devices have been tested cryogenically in order to inform the fabrication of further devices, which will culminate in the final TES designs to be deployed in the field. The detailed design specifications have been independently iterated at each fabrication facility for particular detector frequencies. We present test results for prototype devices, with emphasis on NIST high frequency detectors. A dilution refrigerator was used to achieve the required temperatures. Measurements were taken both with 4-lead resistance measurements and with a time-domain Superconducting Quantum Interference Device (SQUID) multiplexer system. The SQUID readout measurements include analysis of current versus voltage (IV) curves at various temperatures, square wave bias step measurements, and detector noise measurements. Normal resistance, superconducting critical temperature, saturation power, thermal and natural time constants, and thermal properties of the devices are extracted from these measurements.

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

672 / 680

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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MLA
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Stevens, J. R., Cothard, N. F., Vavagiakis, E. M., Ali, A., Arnold, K., Austermann, J. E., … Yohannes, D. (2020). Characterization of Transition Edge Sensors for the Simons Observatory. Journal of Low Temperature Physics, 199(3–4), 672–680. https://doi.org/10.1007/s10909-020-02375-9
Stevens, J. R., N. F. Cothard, E. M. Vavagiakis, A. Ali, K. Arnold, J. E. Austermann, S. K. Choi, et al. “Characterization of Transition Edge Sensors for the Simons Observatory.” Journal of Low Temperature Physics 199, no. 3–4 (May 1, 2020): 672–80. https://doi.org/10.1007/s10909-020-02375-9.
Stevens JR, Cothard NF, Vavagiakis EM, Ali A, Arnold K, Austermann JE, et al. Characterization of Transition Edge Sensors for the Simons Observatory. Journal of Low Temperature Physics. 2020 May 1;199(3–4):672–80.
Stevens, J. R., et al. “Characterization of Transition Edge Sensors for the Simons Observatory.” Journal of Low Temperature Physics, vol. 199, no. 3–4, May 2020, pp. 672–80. Scopus, doi:10.1007/s10909-020-02375-9.
Stevens JR, Cothard NF, Vavagiakis EM, Ali A, Arnold K, Austermann JE, Choi SK, Dober BJ, Duell C, Duff SM, Hilton GC, Ho SPP, Hoang TD, Hubmayr J, Lee AT, Mangu A, Nati F, Niemack MD, Raum C, Renzullo M, Salatino M, Sasse T, Simon SM, Staggs S, Suzuki A, Truitt P, Ullom J, Vivalda J, Vissers MR, Walker S, Westbrook B, Wollack EJ, Xu Z, Yohannes D. Characterization of Transition Edge Sensors for the Simons Observatory. Journal of Low Temperature Physics. 2020 May 1;199(3–4):672–680.
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

672 / 680

Related Subject Headings

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