Distribution of Telecom Entangled Photons through a 7.7 km Antiresonant Hollow-Core Fiber
arXiv:2308.01337 · doi:10.1364/OPTICAQ.514257
Abstract
State of the art classical and quantum communication rely on standard optical fibers with solid cores to transmit light over long distances. However, recent advances have led to the emergence of antiresonant hollow-core optical fibers (AR-HCFs), which due to the novel fiber geometry, show remarkable optical guiding properties, which are not as limited by the material properties as solid-core fibers. In this paper, we explore the transmission of entangled photons through a novel 7.7 km AR-HCF in a laboratory environment at 1550 nm, presenting the first successful demonstration of entanglement distribution via a long AR-HCF. In addition to showing these novel fibers are compatible with long distance quantum communication, we highlight the low latency and low chromatic dispersion intrinsic to AR-HCF, which can increase the secure key rate in time-bin based quantum key distribution protocols.
11 pages (incl. 2 pages appendix), 5 figures
References in corpus (8)
- The Quantum Internet
- Quantum repeaters: From quantum networks to the quantum internet
- Visible-to-telecom quantum frequency conversion of light from a single quantum emitter
- Demonstration of 17λ x 10 Gb/s C-Band Classical / DV-QKD Co-Existence Over Hollow-Core Fiber Link
- Demonstration of quantum-digital payments
- Generation of time-bin entangled photons without temporal post-selection
- Distribution of Telecom Entangled Photons through a 7.7 km Antiresonant Hollow-Core Fiber
- Higher-order Process Matrix Tomography of a passively-stable Quantum SWITCH
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- Stimulated Raman Scattering and Molecular Modulation in Anti-resonant Hollow-core Fibres
- Entanglement transfer during quantum frequency conversion in gas-filled hollow-core fibers
- Coexistence of Entanglement-based Quantum Channels with DWDM Classical Channels over Hollow Core Fibre in a Four Node Quantum Communication Network
- BIFROST: A First-Principles Model of Polarization Mode Dispersion in Optical Fiber