Title :
A short wavelength GigaHertz clocked fiber-optic quantum key distribution system
Author :
Gordon, Karen J. ; Fernandez, Veronica ; Townsend, Paul D. ; Buller, Gerald S.
Author_Institution :
Sch. of Eng. & Phys. Sci., Heriot-Watt Univ., Edinburgh, UK
fDate :
7/1/2004 12:00:00 AM
Abstract :
A quantum key distribution (QKD) system has been developed, using a standard telecommunications optical fiber, which is capable of operating at clock rates of greater than 1 GHz. The QKD system implements a polarization encoded version of the B92 protocol. The system employs vertical-cavity surface-emitting lasers with emission wavelengths of 850 nm as weak coherent light sources, and silicon single photon avalanche diodes as the single photon detectors. A distributed feedback laser of emission wavelength 1.3 μm, and a linear gain germanium avalanche photodiode was used to optically synchronize individual photons over the standard telecommunications fiber. The QKD system exhibited a quantum bit error rate (QBER) of 1.4%, and an estimated net bit rate (NBR) greater than 100 000 bits-1 for a 4.2-km transmission range. For a 10-km fiber range, a QBER of 2.1%, and an estimated NBR of greater than 7000 bits-1 was achieved.
Keywords :
avalanche photodiodes; distributed feedback lasers; error statistics; optical fibre communication; optical fibres; quantum cryptography; quantum optics; surface emitting lasers; synchronisation; 1.3 mum; 10 km; 10-km fiber range; 4.2 km; 4.2-km transmission range; 850 nm; B92 protocol; optical synchronization; polarization encoded version; quantum bit error rate; short wavelength gigahertz clocked fiber-optic quantum key distribution system; silicon single photon avalanche photodiode; standard telecommunications optical fiber; vertical cavity surface-emitting lasers; weak coherent light sources; Clocks; Distributed feedback devices; Fiber lasers; Laser feedback; Optical fiber polarization; Optical fibers; Standards development; Surface emitting lasers; Telecommunication standards; Vertical cavity surface emitting lasers; Cryptography; data security; optical fiber communications; quantum cryptography; quantum key distribution;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2004.830182