DocumentCode :
1542463
Title :
Quantum efficiency and time-domain response of superconducting NbN hot-electron photodetectors
Author :
Il´in, K.S. ; Currie, M. ; Lindgren, M. ; Milostnaya, I.I. ; Verevkin, A.A. ; Gol´tsman, G.N. ; Sobolewski, R.
Author_Institution :
Dept. of Phys., Moscow State Pedagogical Univ., Russia
Volume :
9
Issue :
2
fYear :
1999
fDate :
6/1/1999 12:00:00 AM
Firstpage :
3338
Lastpage :
3341
Abstract :
We report our studies on the response of ultrathin superconducting NbN hot-electron photodetectors. We have measured the photoresponse of few-nm-thick, micron-size structures, which consisted of single and multiple microbridges, to radiation from the continuous-wave semiconductor laser and the femtosecond Ti:sapphire laser with the wavelength of 790 nm and 400 nm, respectively. The maximum responsivity was observed near the film´s superconducting transition with the device optimally current-biased in the resistive state. The responsivity of the detector, normalized to its illuminated area and the coupling factor, was 220 A/W(3/spl times/10/sup 4/ V/W), which corresponded to a quantum efficiency of 340. The responsivity was wavelength independent from the far infrared to the ultraviolet range, and was at least two orders of magnitude higher than comparable semiconductor optical detectors. The time constant of the photoresponse signal was 45 ps, when was measured at 2.15 K in the resistive (switched) state using a cryogenic electro-optical sampling technique with subpicosecond resolution. The obtained results agree very well with our calculations performed using a two-temperature model of the electron heating in thin superconducting films.
Keywords :
bolometers; hot carriers; infrared detectors; niobium compounds; photodetectors; superconducting microbridges; superconducting thin films; ultraviolet detectors; 2.15 K; 400 nm; 790 nm; NbN; cryogenic electro-optical sampling; electron heating; laser radiation response; maximum responsivity; micron-size structures; multiple microbridges; optimally current-biased device; photoresponse; quantum efficiency; single microbridges; subpicosecond resolution; superconducting hot-electron photodetectors; superconducting transition; time constant; time-domain response; two-temperature model; ultrathin film; Infrared detectors; Laser transitions; Optical detectors; Semiconductor lasers; Superconducting films; Superconducting photodetectors; Time domain analysis; Time measurement; Ultrafast optics; Wavelength measurement;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/77.783744
Filename :
783744
Link To Document :
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