English

Comparing complex impedance and bias step measurements of Simons Observatory transition edge sensors

Instrumentation and Methods for Astrophysics 2020-12-18 v2

Abstract

The Simons Observatory (SO) will perform ground-based observations of the cosmic microwave background (CMB) with several small and large aperture telescopes, each outfitted with thousands to tens of thousands of superconducting aluminum manganese (AlMn) transition-edge sensor bolometers (TESs). In-situ characterization of TES responsivities and effective time constants will be required multiple times each observing-day for calibrating time-streams during CMB map-making. Effective time constants are typically estimated in the field by briefly applying small amplitude square-waves on top of the TES DC biases, and fitting exponential decays in the bolometer response. These so-called "bias step" measurements can be rapidly implemented across entire arrays and therefore are attractive because they take up little observing time. However, individual detector complex impedance measurements, while too slow to implement during observations, can provide a fuller picture of the TES model and a better understanding of its temporal response. Here, we present the results of dark TES characterization of many prototype SO bolometers and compare the effective thermal time constants measured via bias steps to those derived from complex impedance data.

Keywords

Cite

@article{arxiv.2012.08547,
  title  = {Comparing complex impedance and bias step measurements of Simons Observatory transition edge sensors},
  author = {Nicholas F. Cothard and Aamir M. Ali and Jason E. Austermann and Steve K. Choi and Kevin T. Crowley and Bradley J. Dober and Cody J. Duell and Shannon M. Duff and Patricio Gallardo and Gene C. Hilton and Shuay-Pwu Patty Ho and Johannes Hubmayr and Michael J. Link and Michael D. Niemack and Rita F. Sonka and Suzanne T. Staggs and Eve M. Vavagiakis and Edward J. Wollack and Zhilei Xu},
  journal= {arXiv preprint arXiv:2012.08547},
  year   = {2020}
}

Comments

10 pages, 6 figures, SPIE Astronomical Telescopes + Instrumentation 2020, Paper Number: 11453-185