Two-photon interference between disparate sources for quantum networking
arXiv:1306.5801 · doi:10.1038/srep02032
Abstract
Quantum networks involve entanglement sharing between multiple users. Ideally, any two users would be able to connect regardless of the type of photon source they employ, provided they fulfill the requirements for two-photon interference. From a theoretical perspective, photons coming from different origins can interfere with a perfect visibility, provided they are made indistinguishable in all degrees of freedom. Previous experimental demonstrations of such a scenario have been limited to photon wavelengths below 900 nm, unsuitable for long distance communication, and suffered from low interference visibility. We report two-photon interference using two disparate heralded single photon sources, which involve different nonlinear effects, operating in the telecom wavelength range. The measured visibility of the two-photon interference is 80+/-4%, which paves the way to hybrid universal quantum networks.
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- Optimizing optical Bragg scattering for single-photon frequency conversion
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- Photon-pair generation in photonic crystal fibrebre with a 1.5GHz modelocked VECSEL
- Hong-Ou-Mandel interference between triggered and heralded single photons from separate atomic systems
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