Complete analysis of a realistic fiber-based quantum repeater scheme
Adam Kinos, Andreas Walther, Stefan Kr\"oll, and Lars Rippe

TL;DR
This paper proposes a fiber-based quantum repeater protocol with time multiplexing, combining entanglement generation, swapping, and purification, achieving high secret key rates over 1000 km by considering realistic error sources.
Contribution
It introduces a realistic quantum repeater scheme with time multiplexing, detailed error analysis, and performance evaluation for long-distance quantum communication.
Findings
Secret key rates up to 1000 Hz at 1000 km
Requires qubit coherence times around one second
Two-qubit gate and measurement errors need to be around 10^-3
Abstract
We present a quantum repeater protocol for distributing entanglement over long distances, where a dedicated communication stage enables trial rates not limited by the travel time between repeater nodes. To accomplish this, each node contains several qubits that can couple to one single-photon emitter. Photons from the emitters generate heralded entanglement between qubits in neighboring nodes. The protocol leaves the emitters disentangled from the rest of the system immediately after emitting the photons, thus allowing them to be reused to entangle other qubits without waiting for the repeater link round-trip time. This time multiplexing increases the protocol trial rate by up to an order of magnitude. The protocol is then combined with conventional deterministic entanglement swapping and heralded entanglement purification to extend the entanglement distance and reduce the entanglement…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum-Dot Cellular Automata
