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Cavity-Free Distributed Quantum Computing with Rydberg Ensembles via Collective Enhancement

Quantum Physics 2026-03-17 v1

Abstract

A complete architecture for cavity-free quantum networking based on collective enhancement in Rydberg atom ensembles is presented. The protocol exploits Rydberg blockade and phase-matched directional emission to eliminate optical cavities without sacrificing performance. The architecture comprises three steps: (i) local control-ensemble entanglement via Rydberg blockade with fidelity Fgate99.93%F_{\mathrm{gate}} \approx 99.93\%; (ii) atom-photon conversion via Raman transitions, achieving directional emission (ηdir35%\eta_{\mathrm{dir}} \approx 35\%) and single-node efficiency ηnode19%\eta_{\mathrm{node}} \approx 19\%; and (iii) remote atom-atom entanglement via Hong-Ou-Mandel interference, producing Bell states with fidelity F>97.5%F > 97.5\%. With quantum memories enabling retry protocols, entanglement generation rates exceed 600600 Hz at 20 km separation. This cavity-free approach provides a practical and scalable pathway for distributed quantum computing and secure quantum communication.

Keywords

Cite

@article{arxiv.2603.14854,
  title  = {Cavity-Free Distributed Quantum Computing with Rydberg Ensembles via Collective Enhancement},
  author = {Aman Ullah},
  journal= {arXiv preprint arXiv:2603.14854},
  year   = {2026}
}
R2 v1 2026-07-01T11:21:33.428Z