Literature DB >> 31360051

Optimization of Time- and Code-Division-Multiplexed Readout for Athena X-IFU.

W B Doriese1, S R Bandler2, S Chaudhuri3, C S Dawson3, E V Denison1, S M Duff1, M Durkin1, C T FitzGerald4, J W Fowler1, J D Gard1, G C Hilton1, K D Irwin3, Y I Joe1, K M Morgan1, G C O'Neil1, C G Pappas1, C D Reintsema1, D A Rudman1, S J Smith2, R W Stevens1, D S Swetz1, P Szypryt1, J N Ullom1, L R Vale1, J C Weber1, B A Young3.   

Abstract

Readout of a large, spacecraft-based array of superconducting transition-edge sensors (TESs) requires careful management of the layout area and power dissipation of the cryogenic-circuit components. We present three optimizations of our time- (TDM) and code-division-multiplexing (CDM) systems for the X-ray Integral Field Unit (X-IFU), a several-thousand-pixel-TES array for the planned Athena-satellite mission. The first optimization is a new readout scheme that is a hybrid of CDM and TDM. This C/TDM architecture balances CDM's noise advantage with TDM's layout compactness. The second is a redesign of a component: the shunt resistor that provides a dc-voltage bias to the TESs. A new layout and a thicker Pd-Au resistive layer combine to reduce this resistor's area by more than a factor of 5. Third, we have studied the power dissipated by the first-stage SQUIDs (superconducting quantum-interference devices) and the readout noise versus the critical current of the first-stage SqUIDs. As a result, the X-IFU TDM and C/TDM SQUIDs will have a specified junction critical current of 5 μA. Based on these design optimizations and TDM experiments described by Durkin, et al. (these proceedings), TDM meets all requirements to be X-IFU's backup-readout option. Hybrid C/TDM is another viable option that could save spacecraft resources.

Entities:  

Keywords:  Athena satellite; X-ray microcalorimeters; multiplexed readout; superconducting quantum-interference devices; transition-edge sensors

Year:  2019        PMID: 31360051      PMCID: PMC6662226          DOI: 10.1109/TASC.2019.2905577

Source DB:  PubMed          Journal:  IEEE Trans Appl Supercond


  3 in total

1.  A practical superconducting-microcalorimeter X-ray spectrometer for beamline and laboratory science.

Authors:  W B Doriese; P Abbamonte; B K Alpert; D A Bennett; E V Denison; Y Fang; D A Fischer; C P Fitzgerald; J W Fowler; J D Gard; J P Hays-Wehle; G C Hilton; C Jaye; J L McChesney; L Miaja-Avila; K M Morgan; Y I Joe; G C O'Neil; C D Reintsema; F Rodolakis; D R Schmidt; H Tatsuno; J Uhlig; L R Vale; J N Ullom; D S Swetz
Journal:  Rev Sci Instrum       Date:  2017-05       Impact factor: 1.523

2.  Developments in Time-Division Multiplexing of X-ray Transition-Edge Sensors.

Authors:  W B Doriese; K M Morgan; D A Bennett; E V Denison; C P Fitzgerald; J W Fowler; J D Gard; J P Hays-Wehle; G C Hilton; K D Irwin; Y I Joe; J A B Mates; G C O'Neil; C D Reintsema; N O Robbins; D R Schmidt; D S Swetz; H Tatsuno; L R Vale; J N Ullom
Journal:  J Low Temp Phys       Date:  2016-12-08       Impact factor: 1.570

3.  Demonstration of Athena X-IFU Compatible 40-Row Time-Division-Multiplexed Readout.

Authors:  M Durkin; J S Adams; S R Bandler; J A Chervenak; S Chaudhuri; C S Dawson; E V Denison; W B Doriese; S M Duff; F M Finkbeiner; C T FitzGerald; J W Fowler; J D Gard; G C Hilton; K D Irwin; Y I Joe; R L Kelley; C A Kilbourne; A R Miniussi; K M Morgan; G C O'Neil; C G Pappas; F S Porter; C D Reintsema; D A Rudman; K SaKai; S J Smith; R W Stevens; D S Swetz; P Szypryt; J N Ullom; L R Vale; N Wakeham; J C Weber; B A Young
Journal:  IEEE Trans Appl Supercond       Date:  2019-03-19
  3 in total

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