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Resource requirements for efficient quantum communication using all-photonic graph states generated from a few matter qubits

Quantum Physics 2021-02-17 v4

Abstract

Quantum communication technologies show great promise for applications ranging from the secure transmission of secret messages to distributed quantum computing. Due to fiber losses, long-distance quantum communication requires the use of quantum repeaters, for which there exist quantum memory-based schemes and all-photonic schemes. While all-photonic approaches based on graph states generated from linear optics avoid coherence time issues associated with memories, they outperform repeater-less protocols only at the expense of a prohibitively large overhead in resources. Here, we consider using matter qubits to produce the photonic graph states and analyze in detail the trade-off between resources and performance, as characterized by the achievable secret key rate per matter qubit. We show that fast two-qubit entangling gates between matter qubits and high photon collection and detection efficiencies are the main ingredients needed for the all-photonic protocol to outperform both repeater-less and memory-based schemes.

Keywords

Cite

@article{arxiv.2005.07198,
  title  = {Resource requirements for efficient quantum communication using all-photonic graph states generated from a few matter qubits},
  author = {Paul Hilaire and Edwin Barnes and Sophia E. Economou},
  journal= {arXiv preprint arXiv:2005.07198},
  year   = {2021}
}

Comments

24 pages, 6 figures

R2 v1 2026-06-23T15:33:28.106Z