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Dive into the research topics where T. Cecil is active.

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Featured researches published by T. Cecil.


Journal of Low Temperature Physics | 2018

Optical characterization of the SPT-3G camera

Z. Pan; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; J. S. Avva; R. Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; M. Dobbs; D. Dutcher; Wendeline Everett; A. Foster; R. N. Gannon; A. Gilbert; J. C. Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning; G. C. Hilton

The third-generation South Pole Telescope camera is designed to measure the cosmic microwave background across three frequency bands (centered at 95, 150 and 220xa0GHz) with


arXiv: Instrumentation and Methods for Astrophysics | 2018

Broadband anti-reflective coatings for cosmic microwave background experiments

A. Nadolski; A. M. Kofman; J. D. Vieira; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. S. Avva; Ritoban Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean Francois Cliche; A. Cukierman; Tijmen de Haan; Junjia Ding; M. Dobbs; D. Dutcher; Wendy Everett; A. Foster; Jianyiang Fu; Jason Gallichio; A. Gilbert; John Groh; R. Guyser; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington


arXiv: Instrumentation and Methods for Astrophysics | 2018

Design and characterization of the SPT-3G receiver

J. A. Sobrin; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. S. Avva; Ritoban Basu Thakur; Jean-François Cliche; A. Cukierman; Tijmen de Haan; Junjia Ding; M. Dobbs; D. Dutcher; Wendeline Everett; A. Foster; Jason Gallichio; A. Gilbert; John Groh; Sam Guns; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning; W. L. Holzapfel; N. Huang; K. D. Irwin; O. Jeong; M. Jonas; Trupti Khaire; A. M. Kofman; M. Korman

sim


Journal of Low Temperature Physics | 2018

Design and Bolometer Characterization of the SPT-3G First-Year Focal Plane

W. Everett; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; J. S. Avva; R. Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; M. Dobbs; D. Dutcher; A. Foster; R. N. Gannon; A. Gilbert; John Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning; G. C. Hilton; W. L. Holzapfel


Journal of Low Temperature Physics | 2018

Design and Assembly of SPT-3G Cold Readout Hardware

J. S. Avva; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; R. Basu Thakur; D. Barron; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; M. Dobbs; D. Dutcher; T. Elleflot; W. Everett; A. Foster; R. N. Gannon; A. Gilbert; John Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; M. Hasegawa

∼xa016,000 transition-edge sensor (TES) bolometers. Each multichroic array element on a detector wafer has a broadband sinuous antenna that couples power to six TESs, one for each of the three observing bands and both polarizations, via lumped element filters. Ten detector wafers populate the detector array, which is coupled to the sky via a large-aperture optical system. Here we present the frequency band characterization with Fourier transform spectroscopy, measurements of optical time constants, beam properties, and optical and polarization efficiencies of the detector array. The detectors have frequency bands consistent with our simulations and have high average optical efficiency which is 86, 77 and 66% for the 95, 150 and 220xa0GHz detectors. The time constants of the detectors are mostly between 0.5 and 5 ms. The beam is round with the correct size, and the polarization efficiency is more than 90% for most of the bolometers.


Journal of Low Temperature Physics | 2018

SPT-3G: a multichroic receiver for the South Pole Telescope

A. J. Anderson; Peter A. R. Ade; Z. Ahmed; J. E. Austermann; J. S. Avva; P. S. Barry; R. Basu Thakur; A. N. Bender; B. A. Benson; L. E. Bleem; K. L. Byrum; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; H. M. Cho; Jean-François Cliche; T. M. Crawford; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; M. Dobbs; D. Dutcher; W. Everett; A. Foster; R. N. Gannon; A. Gilbert; John Groh; N. W. Halverson

The desire for higher sensitivity has driven ground-based cosmic microwave background (CMB) experiments to employ ever larger focal planes, which in turn require larger reimaging optics. Practical limits to the maximum size of these optics motivates the development of quasi-optically-coupled (lenslet-coupled), multi-chroic detectors. These detectors can be sensitive across a broader bandwidth compared to waveguide-coupled detectors. However, the increase in bandwidth comes at a cost: the lenses (up to ~700 mm diameter) and lenslets (~5 mm diameter, hemispherical lenses on the focal plane) used in these systems are made from high-refractive-index materials (such as silicon or amorphous aluminum oxide) that reflect nearly a third of the incident radiation. In order to maximize the faint CMB signal that reaches the detectors, the lenses and lenslets must be coated with an anti-reflective (AR) material. The AR coating must maximize radiation transmission in scientifically interesting bands and be cryogenically stable. Such a coating was developed for the third generation camera, SPT-3G, of the South Pole Telescope (SPT) experiment, but the materials and techniques used in the development are general to AR coatings for mm-wave optics. The three-layer polytetra uoroethylene-based AR coating is broadband, inexpensive, and can be manufactured with simple tools. The coating is field tested; AR coated focal plane elements were deployed in the 2016-2017 austral summer and AR coated reimaging optics were deployed in 2017-2018.


Journal of Low Temperature Physics | 2018

Tuning SPT-3G Transition-Edge-Sensor Electrical Properties with a Four-Layer Ti–Au–Ti–Au Thin-Film Stack

F. W. Carter; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; J. S. Avva; R. Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; Ralu Divan; M. Dobbs; D. Dutcher; W. Everett; A. Foster; R. N. Gannon; A. Gilbert; J. C. Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning; G. C. Hilton

The SPT-3G receiver was commissioned in early 2017 on the 10-meter South Pole Telescope (SPT) to map anisotropies in the cosmic microwave background (CMB). New optics, detector, and readout technologies have yielded a multichroic, high-resolution, low-noise camera with impressive throughput and sensitivity, offering the potential to improve our understanding of inflationary physics, astroparticle physics, and growth of structure. We highlight several key features and design principles of the new receiver, and summarize its performance to date.


Journal of Low Temperature Physics | 2014

Towards X-ray Thermal Kinetic Inductance Detectors

Antonino Miceli; T. Cecil; Lisa Gades; Orlando Quaranta

During the austral summer of 2016–2017, the third-generation camera, SPT-3G, was installed on the South Pole Telescope, increasing the detector count in the focal plane by an order of magnitude relative to the previous generation. Designed to map the polarization of the cosmic microwave background, SPT-3G contains ten 6


Journal of Low Temperature Physics | 2018

Fabrication of Detector Arrays for the SPT-3G Receiver

C. M. Posada; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; J. S. Avva; R. Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Junjia Ding; Ralu Divan; M. Dobbs; D. Dutcher; W. Everett; A. Foster; R. N. Gannon; A. Gilbert; J. C. Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning


Journal of Low Temperature Physics | 2018

Thermal Links and Microstrip Transmission Lines in SPT-3G Bolometers

Junjia Ding; Peter A. R. Ade; Z. Ahmed; A. J. Anderson; J. E. Austermann; J. S. Avva; R. Basu Thakur; A. N. Bender; B. A. Benson; J. E. Carlstrom; F. W. Carter; T. Cecil; C. L. Chang; Jean-François Cliche; A. Cukierman; E. V. Denison; T. de Haan; Ralu Divan; M. Dobbs; D. Dutcher; W. Everett; A. Foster; R. N. Gannon; A. Gilbert; J. C. Groh; N. W. Halverson; A. H. Harke-Hosemann; N. L. Harrington; J. W. Henning; G. C. Hilton

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A. Cukierman

University of California

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A. Foster

Case Western Reserve University

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F. W. Carter

Argonne National Laboratory

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J. S. Avva

University of California

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Junjia Ding

Argonne National Laboratory

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N. W. Halverson

University of Colorado Boulder

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