DocumentCode :
2714151
Title :
Registration of infrared single photons by a two-channel receiver based on fiber-coupled superconducting single-photon detectors
Author :
Okunev, O. ; Chulkova, G. ; Milostnaya, I. ; Antipov, A. ; Smirnov, K. ; Morozov, D. ; Korneev, A. ; Voronov, B. ; Gol´tsman, Gregory ; Stysz, W. ; Wegrzecki, M. ; Bar, J. ; Grabiec, P. ; Gorska, M. ; Pearlman, A. ; Cross, A. ; Kitaygorsky, J. ; Sobolewsk
Author_Institution :
Moscow State Pedagogical Inst., Russia
Volume :
2
fYear :
2005
fDate :
12-17 Sept. 2005
Firstpage :
282
Abstract :
Single-photon detectors (SPDs) are the foundation of all quantum communications (QC) protocols. Among different classes of SPDs currently studied, NbN superconducting SPDs (SSPDs) are established as the best devices for ultrafast counting of single photons in the infrared (IR) wavelength range. The SSPDs are nanostructured, 100 μm2 in total area, superconducting meanders, patterned by electron lithography in ultra-thin NbN films. Their operation has been explained within a phenomenological hot-electron photoresponse model. We present the design and performance of a novel, two-channel SPD receiver, based on two fiber-coupled NbN SSPDs. The receivers have been developed for fiber-based QC systems, operational at 1.3 μm and 1.55 μm telecommunication wavelengths. They operate in the temperature range from 4.2 K to 2 K, in which the NbN SSPDs exhibit their best performance. The receiver unit has been designed as a cryostat insert, placed inside a standard liquid-helium storage dewar. The input of the receiver consists of a pair of single-mode optical fibers, equipped with the standard FC connectors and kept at room temperature. Coupling between the SSPD and the fiber is achieved using a specially designed, precise micromechanical holder that places the fiber directly on top of the SSPD nanostructure. Our receivers achieve the quantum efficiency of up to 7% for near-IR photons, with the coupling efficiency of about 30%. The response time was measured to be <300 ps and it was limited by our read-out electronics. The jitter of fiber-coupled SSPDs is <35 ps and their dark-count rate is below 1 s-1. The presented performance parameters show that our single-photon receivers are fully applicable for quantum-correlation-type QC systems, including practical quantum cryptography.
Keywords :
cryostats; electron beam lithography; infrared detectors; nanostructured materials; niobium compounds; optical design techniques; optical fibre couplers; optical receivers; photon counting; quantum cryptography; superconducting photodetectors; timing jitter; 1.3 mum; 1.55 mum; 4.2 to 2 K; FC connectors; NbN; NbN superconducting SPD; cryostat insert; dark-count rate; electron lithography; fiber-coupled NbN SSPD; fiber-coupled superconducting single-photon detectors; hot-electron photoresponse model; infrared single photons; jitter; liquid-helium storage dewar; micromechanical holder; quantum communications; quantum cryptography; quantum efficiency; quantum-correlation; two-channel receiver; Electrons; Infrared detectors; Lithography; Optical fiber communication; Optical fiber devices; Optical fibers; Optical receivers; Protocols; Superconducting films; Superconducting photodetectors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Optoelectronics and Lasers, 2005. Proceedings of CAOL 2005. Second International Conference on
Print_ISBN :
0-7803-9130-6
Type :
conf
DOI :
10.1109/CAOL.2005.1553980
Filename :
1553980
Link To Document :
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