New Journal of Physics · 2009 · 213 citations · 16 references
EngineeringOptical Wireless CommunicationQuantum ComputingQuantum NetworkOptical CommunicationNm QkdQuantum EntanglementDense Wavelength MultiplexingOptical NetworkingQuantum Key DistributionFree-space Optical NetworkQuantum SciencePhotonicsPassive Optical NetworkStrong Classical ChannelsSpontaneous Raman ScatteringQuantum CommunicationQuantum NetworkingOptoelectronicsDominant Noise Mechanism
To move beyond dedicated links and networks, quantum communications signals must be integrated into networks carrying classical optical channels at power levels many orders of magnitude higher than the quantum signals themselves. We demonstrate the transmission of a 1550 nm quantum channel with up to two simultaneous 200 GHz spaced classical telecom channels, using reconfigurable optical add drop multiplexer (ROADM) technology for multiplexing and routing quantum and classical signals. The quantum channel is used to perform quantum key distribution (QKD) in the presence of noise generated as a by-product of the co-propagation of classical channels. We demonstrate that the dominant noise mechanism can arise from either four-wave mixing or spontaneous Raman scattering, depending on the optical path characteristics as well as the classical channel parameters. We quantify these impairments and discuss mitigation strategies.
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Practical quantum key distribution with polarization entangled photons
Andreas Poppe, Alessandro Fedrizzi, Rupert Ursin et al. · Optics Express · 2004 · 229 citations · Full text
Long-distance quantum key distribution in optical fibre
Philip A. Hiskett, D. Rosenberg, C. G. Peterson et al. · New Journal of Physics · 2006 · 190 citations · Full text