Quantum Switches for Gottesman-Kitaev-Preskill Qubit-based All-Photonic Quantum Networks
Mohadeseh Azari, Paul Polakos, Kaushik P. Seshadreesan

TL;DR
This paper introduces a quantum switch architecture for GKP-qubit-based all-photonic quantum networks, optimizing entanglement distribution and resource allocation for scalable, high-rate quantum communication.
Contribution
It presents a novel quantum switch design utilizing GKP graph states and an entanglement-ranking protocol for efficient, fair, and scalable quantum network management.
Findings
Optimized resource allocation maximizes switch throughput.
The switch supports arbitrary network topologies with compatible repeaters.
Demonstrated effectiveness in a data center network scenario.
Abstract
The Gottesman-Kitaev-Preskill (GKP) code, being information theoretically near optimal for quantum communication over Gaussian thermal-loss optical channels, is likely to be the encoding of choice for advanced quantum networks of the future. Quantum repeaters based on GKP-encoded light have been shown to support high end-to-end entanglement rates across large distances despite realistic finite squeezing in GKP code preparation and homodyne detection inefficiencies. Here, we introduce a quantum switch for GKP-qubit-based quantum networks, whose architecture involves multiplexed GKP-qubit-based entanglement link generation with clients, and their all-photonic storage, together enabled by GKP-qubit graph state resources. For bipartite entanglement distribution between clients via entanglement swapping, the switch uses a multi-client generalization of a recently introduced…
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