Quantum Repeaters based on Single Trapped Ions
Nicolas Sangouard (MPQ), Romain Dubessy (MPQ), Christoph Simon (GAP)

TL;DR
This paper proposes a quantum repeater protocol using single trapped ions and high finesse cavities, achieving higher entanglement distribution rates than existing methods by leveraging deterministic entanglement swapping and photon collection techniques.
Contribution
It introduces a novel ion-based quantum repeater scheme that outperforms previous atomic ensemble and linear optics methods in entanglement distribution rate.
Findings
Entanglement distribution rate is orders of magnitude higher than existing schemes.
Deterministic entanglement swapping with trapped ions enhances efficiency.
Temporal multiplexing further accelerates entanglement distribution.
Abstract
We analyze the performance of a quantum repeater protocol based on single trapped ions. At each node, single trapped ions embedded into high finesse cavities emit single photons whose polarization is entangled with the ion state. A specific detection of two photons at a central station located half-way between two nodes heralds the entanglement of two remote ions. Entanglement can be extended to long distances by applying successive entanglement swapping operations based on two-ion gate operations that have already been demonstrated experimentally with high precision. Our calculation shows that the distribution rate of entanglement achievable with such an ion-based quantum repeater protocol is higher by orders of magnitude than the rates that are achievable with the best known schemes based on atomic ensemble memories and linear optics. The main reason is that for trapped ions the…
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