Abstract

We have developed a system for quantum key distribution (QKD), based on standard telecommunication lasers, detectors, and optical fiber, that passively compensates for time-dependent variations of the fiber-optic path due to stress, temperature changes, or birefringence. This approach allows information encoded in phase shifts imposed on single-photon-level pulses to be accurately read out after transmission over many kilometers of uncontrolled fiber. Cooled InGaAs avalanche photodiodes, pulse-biased using a special noise canceling circuit, are used to detect single 1.31-/spl mu/m infrared photons with a high efficiency, low dark-count rate, and subnanosecond time resolution. A single optical fiber carries both the quantum information and precise 1.55 /spl mu/m timing pulses between the two end stations. Overall synchronization of end-station activities, public discussion of basis choices, error correction, and privacy amplification have all been implemented over a local area network (LAN). The system at present generates raw, error-corrected, and privacy-amplified key data at rates of /spl sim/1000, 600, and 200 bits/s, respectively, over a 10-km single-mode fiber link.

Keywords

Quantum key distributionOpticsPhysicsOptical fiberSingle-mode optical fiberQuantum cryptographyFiber-optic communicationPhoton countingQuantum information scienceAvalanche photodiodeOptoelectronicsPhotonDetectorComputer sciencePolarization-maintaining optical fiberQuantum informationFiber optic sensorQuantumQuantum entanglement

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Publication Info

Year
2000
Type
article
Volume
36
Issue
3
Pages
340-347
Citations
141
Access
Closed

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Cite This

Donald S. Bethune, W. P. Risk (2000). An autocompensating fiber-optic quantum cryptography system based on polarization splitting of light. IEEE Journal of Quantum Electronics , 36 (3) , 340-347. https://doi.org/10.1109/3.825881

Identifiers

DOI
10.1109/3.825881