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Continuous Entanglement Distribution from an AlGaAs-on-Insulator Microcomb for Quantum Communications

Quantum Physics 2023-10-24 v1 Optics

Abstract

Using an aluminum gallium arsenide microring resonator, we demonstrate a bright quantum optical microcomb with >300>300 nm bandwidth and more than 20 sets of time-energy entangled modes, enabling spectral demultiplexing with simple, off-the-shelf commercial telecom components. We report high-rate continuous entanglement distribution for two sets of entangled-photon pair frequency modes exhibiting up to 2020 GHz/mW2^2 pair generation rate. As an illustrative example of entanglement distribution, we perform a continuous-wave time-bin quantum key distribution protocol with 8 kbps raw key rates while maintaining less than 10%\% error rate and sufficient two-photon visibility to ensure security of the channel. When the >>20 frequency modes are multiplexed, we estimate >>100 kbps entanglement-based key rates or the creation of a multi-user quantum communications network. The entire system requires less than 110 μ\muW of on-chip optical power, demonstrating an efficient source of entangled frequency modes for quantum communications. As a proof of principle, a quantum key is distributed across 12 km of deployed fiber on the UCSB campus and used to transmit a 21 kB image with <9%<9\% error.

Keywords

Cite

@article{arxiv.2310.14112,
  title  = {Continuous Entanglement Distribution from an AlGaAs-on-Insulator Microcomb for Quantum Communications},
  author = {Trevor J. Steiner and Maximilian Shen and Joshua E. Castro and John E. Bowers and Galan Moody},
  journal= {arXiv preprint arXiv:2310.14112},
  year   = {2023}
}

Comments

14 pages, 8 figures