DocumentCode
1397516
Title
Ultrawide Noise Bandwidth of NbN Hot-Electron Bolometer Mixers With In Situ Gold Contacts
Author
Tretyakov, Ivan ; Ryabchun, Sergey ; Finkel, Matvey ; Maslennikov, Sergey ; Maslennikova, Anna ; Kaurova, Natalia ; Lobastova, Anastasia ; Voronov, Boris ; Gol´tsman, Gregory
Author_Institution
Dept. of Phys. & Inf. Technol., Moscow State Pedagogical Univ., Moscow, Russia
Volume
21
Issue
3
fYear
2011
fDate
6/1/2011 12:00:00 AM
Firstpage
620
Lastpage
623
Abstract
We report a noise bandwidth of 7 GHz in the new generation of NbN hot-electron bolometer (HEB) mixers that are being developed for the space observatory Millimetron. The HEB receiver driven by a 2.5-THz local oscillator offered a noise temperature of 600 K in a 50-MHz final detection bandwidth. As the filter center frequency was swept this value remained nearly constant up to the cutoff frequency of the cryogenic amplifier at 7 GHz. We believe that such a low value of the noise temperature is due to reduced radio frequency (RF) loss at the interface between the superconducting film and the gold contacts. We have also performed gain bandwidth measurements at the superconducting transition on HEB mixers with various lengths and found them to be in excellent agreement with the results of the analytical and numerical models developed for the HEB mixer with both diffusion and phonon cooling of hot electrons.
Keywords
aerospace instrumentation; bolometers; gold; hot carriers; niobium compounds; submillimetre astronomy; submillimetre wave mixers; superconducting device noise; superconducting mixers; superconducting photodetectors; Au; NbN; cryogenic amplifier; frequency 2.5 THz; frequency 50 MHz; frequency 7 GHz; gain bandwidth measurement; hot-electron bolometer mixer; hot-electron bolometer receiver; in situ gold contacts; local oscillator; phonon cooling; space observatory millimetron; superconducting film; ultrawide noise bandwidth; Bandwidth; Gain; Mixers; Noise; Phonons; Receivers; Temperature measurement; HEB mixer; millimetron; noise temperature; terahertz radio astronomy;
fLanguage
English
Journal_Title
Applied Superconductivity, IEEE Transactions on
Publisher
ieee
ISSN
1051-8223
Type
jour
DOI
10.1109/TASC.2010.2090634
Filename
5659973
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