All-photonic GKP-qubit repeater using analog-information-assisted multiplexed entanglement ranking
Filip Rozp\k{e}dek, Kaushik P. Seshadreesan, Paul Polakos, Liang, Jiang, Saikat Guha

TL;DR
This paper proposes a novel all-photonic quantum repeater architecture using bosonic GKP codes with multiplexing and analog information, enabling high-rate, long-distance quantum communication over 1000 km.
Contribution
It introduces a new GKP-based repeater scheme that leverages deterministic two-qubit gates and analog information for improved entanglement distribution, surpassing previous limitations.
Findings
Achieves quantum communication over 1000 km with less than 13 dB GKP squeezing.
Enables high-rate entanglement generation using multiplexed links.
Requires approximately 10^3-10^4 GKP qubits per repeater per protocol run.
Abstract
Long distance quantum communication will require the use of quantum repeaters to overcome the exponential attenuation of signal with distance. One class of such repeaters utilizes quantum error correction to overcome losses in the communication channel. Here we propose a novel strategy of using the bosonic Gottesman-Kitaev-Preskill (GKP) code in a two-way repeater architecture with multiplexing. The crucial feature of the GKP code that we make use of is the fact that GKP qubits easily admit deterministic two-qubit gates, hence allowing for multiplexing without the need for generating large cluster states as required in previous all-photonic architectures based on discrete-variable codes. Moreover, alleviating the need for such clique-clusters entails that we are no longer limited to extraction of at most one end-to-end entangled pair from a single protocol run. In fact, thanks to the…
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Taxonomy
TopicsQuantum Information and Cryptography · Optical Network Technologies · Neural Networks and Reservoir Computing
