CCAT: LED Mapping and Characterization of the 280 GHz TiN KID Array

Fuente: arXiv
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Main Authors: Middleton, Alicia, Choi, Steve K., Walker, Samantha, Austermann, Jason, Burgoyne, James R., Butler, Victoria, Chapman, Scott C., Crites, Abigail T., Duell, Cody J., Freundt, Rodrigo G., Huber, Anthony I., Huber, Zachary B., Hubmayr, Johannes, Keller, Ben, Lin, Lawrence T., Niemack, Michael D., Patel, Darshan, Sinclair, Adrian K., Smith, Ema, Vaskuri, Anna, Vavagiakis, Eve M., Vissers, Michael, Wang, Yuhan, Wheeler, Jordan
Format: Preprint
Published: 2024
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author Middleton, Alicia
Choi, Steve K.
Walker, Samantha
Austermann, Jason
Burgoyne, James R.
Butler, Victoria
Chapman, Scott C.
Crites, Abigail T.
Duell, Cody J.
Freundt, Rodrigo G.
Huber, Anthony I.
Huber, Zachary B.
Hubmayr, Johannes
Keller, Ben
Lin, Lawrence T.
Niemack, Michael D.
Patel, Darshan
Sinclair, Adrian K.
Smith, Ema
Vaskuri, Anna
Vavagiakis, Eve M.
Vissers, Michael
Wang, Yuhan
Wheeler, Jordan
author_facet Middleton, Alicia
Choi, Steve K.
Walker, Samantha
Austermann, Jason
Burgoyne, James R.
Butler, Victoria
Chapman, Scott C.
Crites, Abigail T.
Duell, Cody J.
Freundt, Rodrigo G.
Huber, Anthony I.
Huber, Zachary B.
Hubmayr, Johannes
Keller, Ben
Lin, Lawrence T.
Niemack, Michael D.
Patel, Darshan
Sinclair, Adrian K.
Smith, Ema
Vaskuri, Anna
Vavagiakis, Eve M.
Vissers, Michael
Wang, Yuhan
Wheeler, Jordan
contents Prime-Cam, one of the primary instruments for the Fred Young Submillimeter Telescope (FYST) developed by the CCAT Collaboration, will house up to seven instrument modules, with the first operating at 280 GHz. Each module will include three arrays of superconducting microwave kinetic inductance detectors (KIDs). The first KID array fabricated for the 280 GHz module uses titanium-nitride (TiN) as the superconducting material and has 3,456 individual detectors, while the other two arrays use aluminum. This paper presents the design and laboratory characterization of the 280 GHz TiN array, which is cooled below its critical temperature to ~0.1 K and read out over six RF feedlines. LED mapping, a technique for matching the measured resonant frequency of a detector to its physical position, was performed on the array so that the results can be used to lithographically trim the KID capacitors and increase the yield of the array by reducing frequency collisions. We present the methods and results of LED mapping the 280 GHz TiN KID array before deployment on FYST.
format Preprint
id arxiv_https___arxiv_org_abs_2410_21396
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle CCAT: LED Mapping and Characterization of the 280 GHz TiN KID Array
Middleton, Alicia
Choi, Steve K.
Walker, Samantha
Austermann, Jason
Burgoyne, James R.
Butler, Victoria
Chapman, Scott C.
Crites, Abigail T.
Duell, Cody J.
Freundt, Rodrigo G.
Huber, Anthony I.
Huber, Zachary B.
Hubmayr, Johannes
Keller, Ben
Lin, Lawrence T.
Niemack, Michael D.
Patel, Darshan
Sinclair, Adrian K.
Smith, Ema
Vaskuri, Anna
Vavagiakis, Eve M.
Vissers, Michael
Wang, Yuhan
Wheeler, Jordan
Instrumentation and Methods for Astrophysics
Cosmology and Nongalactic Astrophysics
Prime-Cam, one of the primary instruments for the Fred Young Submillimeter Telescope (FYST) developed by the CCAT Collaboration, will house up to seven instrument modules, with the first operating at 280 GHz. Each module will include three arrays of superconducting microwave kinetic inductance detectors (KIDs). The first KID array fabricated for the 280 GHz module uses titanium-nitride (TiN) as the superconducting material and has 3,456 individual detectors, while the other two arrays use aluminum. This paper presents the design and laboratory characterization of the 280 GHz TiN array, which is cooled below its critical temperature to ~0.1 K and read out over six RF feedlines. LED mapping, a technique for matching the measured resonant frequency of a detector to its physical position, was performed on the array so that the results can be used to lithographically trim the KID capacitors and increase the yield of the array by reducing frequency collisions. We present the methods and results of LED mapping the 280 GHz TiN KID array before deployment on FYST.
title CCAT: LED Mapping and Characterization of the 280 GHz TiN KID Array
topic Instrumentation and Methods for Astrophysics
Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2410.21396