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Coexistence of continuous variable QKD with intense DWDM classical channels
by
Alléaume, Romain
, Qin, Hao
, Kumar, Rupesh
in
C band
/ Channels
/ coherent communications
/ Computer networks
/ Continuity (mathematics)
/ Dense Wavelength Division Multiplexing
/ Noise tolerance
/ Optical communication
/ Physics
/ Quantum cryptography
/ quantum key distribution
/ Raman scattering
/ Wave division multiplexing
/ wavelength division multiplexing
2015
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Coexistence of continuous variable QKD with intense DWDM classical channels
by
Alléaume, Romain
, Qin, Hao
, Kumar, Rupesh
in
C band
/ Channels
/ coherent communications
/ Computer networks
/ Continuity (mathematics)
/ Dense Wavelength Division Multiplexing
/ Noise tolerance
/ Optical communication
/ Physics
/ Quantum cryptography
/ quantum key distribution
/ Raman scattering
/ Wave division multiplexing
/ wavelength division multiplexing
2015
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Do you wish to request the book?
Coexistence of continuous variable QKD with intense DWDM classical channels
by
Alléaume, Romain
, Qin, Hao
, Kumar, Rupesh
in
C band
/ Channels
/ coherent communications
/ Computer networks
/ Continuity (mathematics)
/ Dense Wavelength Division Multiplexing
/ Noise tolerance
/ Optical communication
/ Physics
/ Quantum cryptography
/ quantum key distribution
/ Raman scattering
/ Wave division multiplexing
/ wavelength division multiplexing
2015
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Coexistence of continuous variable QKD with intense DWDM classical channels
Journal Article
Coexistence of continuous variable QKD with intense DWDM classical channels
2015
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Overview
We demonstrate experimentally the feasibility of continuous variable quantum key distribution (CV-QKD) in dense-wavelength-division multiplexing networks (DWDM), where QKD will typically have to coexist with several co-propagating (forward or backward) C-band classical channels whose launch power is around 0 dBm. We have conducted experimental tests of the coexistence of CV-QKD multiplexed with an intense classical channel, for different input powers and different DWDM wavelengths. Over a 25 km fiber, a CV-QKD operated over the 1530.12 nm channel can tolerate the noise arising from up to 11.5 dBm classical channel at 1550.12 nm in the forward direction (9.7 dBm in backward). A positive key rate (0.49 kbits s−1) can be obtained at 75 km with classical channel power of respectively −3 and −9 dBm in forward and backward. Based on these measurements, we have also simulated the excess noise and optimized channel allocation for the integration of CV-QKD in some access networks. We have, for example, shown that CV-QKD could coexist with five pairs of channels (with nominal input powers: 2 dBm forward and 1 dBm backward) over a 25 km WDM-PON network. The obtained results demonstrate the outstanding capacity of CV-QKD to coexist with classical signals of realistic intensity in optical networks.
Publisher
IOP Publishing
Subject
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