A frequency-bin-entangled quantum key distribution network is demonstrated with qutrit (d=3) encoding, achieving 1374 bit/s secure key rate and an estimated 295 km range with qubits.
On-chip pulse shaping of entangled photons
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abstract
We demonstrate spectral shaping of entangled photons with a six-channel microring-resonator-based silicon photonic pulse shaper. Through precise calibration of thermal phase shifters in a microresonator-based pulse shaper, we demonstrate line-by-line phase control on a 3~GHz grid for two frequency-bin-entangled qudits, corresponding to Hilbert spaces of up to $6\times 6$ ($3\times 3$) dimensions for shared (independent) signal-idler filters. The pulse shaper's fine spectral resolution enables control of nanosecond-scale temporal features, which are observed by direct coincidence detection of biphoton correlation functions that show excellent agreement with theory. This work marks, to our knowledge, the first demonstration of biphoton pulse shaping using an integrated spectral shaper and holds significant promise for applications in quantum information processing.
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Multi-dimensional frequency-bin entanglement-based quantum key distribution network
A frequency-bin-entangled quantum key distribution network is demonstrated with qutrit (d=3) encoding, achieving 1374 bit/s secure key rate and an estimated 295 km range with qubits.