DocumentCode
1116078
Title
Design analysis of a novel low temperature bolometer
Author
Nahum, M. ; Richards, P.L.
Author_Institution
Dept. of Phys., California Univ., Berkeley, CA, USA
Volume
27
Issue
2
fYear
1991
fDate
3/1/1991 12:00:00 AM
Firstpage
2484
Lastpage
2487
Abstract
The authors propose a novel antenna-coupled superconducting bolometer which makes use of the thermal boundary resistance available at low temperatures. The radiation is collected by a planar self-complementary antenna and thermalized in a small thin-film resistor. The resulting temperature rise is detected by a transition edge thermometer which can be (but need not be) a separate film. All components are deposited directly on substrate so that arrays can be conveniently produced by conventional lithographic techniques. The active area of the bolometer is thermally decoupled by its small size and by the thermal resistance of the boundaries with the substrate and the antenna terminals. Design calculations based on a 2-μm×2-μm film of a superconductor with T c ≈0.1 K give an NEP≈10-18 WHz-1/2, a time constant ≈10-6 s, and responsivities up to ≈109 V/W. These specifications meet the requirements for NASA´s Space Infrared Telescope Facility and Sub-Millimeter Moderate Mission. Useful applications also exist at 3He and 4 He temperatures. The calculated NEP scales as T 5/2 . Materials, architectures, and readout schemes are discussed
Keywords
bolometers; infrared detectors; low-temperature techniques; resistance thermometers; superconducting devices; thermal resistance; thin film resistors; NEP; Space Infrared Telescope Facility; Sub-Millimeter Moderate Mission; active area; antenna-coupled superconducting bolometer; lithographic techniques; low temperature bolometer; planar self-complementary antenna; readout schemes; responsivities; thermal boundary resistance; thin-film resistor; transition edge thermometer; Bolometers; Helium; Optical design; Resistors; Substrates; Superconducting films; Superconducting photodetectors; Superconducting thin films; Superconducting transition temperature; Thermal resistance;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.133722
Filename
133722
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