研究目的
To present a fully connected quantum network architecture that scales the advantages of quantum key distribution protocols to more than two distant users, minimizing resources without sacrificing security or functionality.
研究成果
We have successfully realized a proof-of-principle demonstration of a quantum communication network. The use of telecommunications wavelengths makes it compatible with existing infrastructure. The network architecture can be readily adapted to any other network topology.
研究不足
The chief drawback of the architecture is the amount of noise introduced by detecting several channels on a single detector. The noise results in a loss of fidelity (or quality of the entanglement).
1:Experimental Design and Method Selection:
The experiment consisted of a source of bipartite polarization-entangled photon pairs, multiplexing and de-multiplexing modules, and user hardware. The source was based on type-0 spontaneous parametric down-conversion in a magnesium-oxide-doped periodically poled lithium niobate (MgO:ppLN) bulk crystal.
2:Sample Selection and Data Sources:
The spectrum of the signal and idler photons was centred at 1,550.15 nm and the filters were chosen to be symmetric with respect to this centre wavelength.
3:15 nm and the filters were chosen to be symmetric with respect to this centre wavelength.
List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: A source of bipartite polarization-entangled photon pairs, multiplexing and de-multiplexing modules, and user hardware including single-photon avalanche detectors.
4:Experimental Procedures and Operational Workflow:
The 12 channels were combined into four fibres using two band-pass filters per fibre, so that three channels reach each one of the four users via one fibre. Each user implemented a basis choice by rotating a half-wave plate.
5:Data Analysis Methods:
Single-photon detection events were time-tagged and two-photon coincidence events were identified within a coincidence window of 1 ns.
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