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Quantum Repeater Chains via Cavity-Magnon for Scalable Quantum Networks

  • Mughees Ahmed Khan*
  • , Syed Shahmir
  • , M. Talha Rahim
  • , Saif Al-Kuwari
  • , Tasawar Abbas
  • *Corresponding author for this work
  • Hamad bin Khalifa University
  • COMSATS University Islamabad

Research output: Contribution to journalArticlepeer-review

Abstract

Scalable quantum networks require quantum repeaters to overcome major challenges such as photon loss and decoherence in long-distance quantum communication. In this paper, we present a cavity-magnon quantum repeater architecture that exploits the frequency tunability and hybrid integration capabilities of magnonic platforms to enable efficient entanglement swapping across multi-hop networks. The coherence budget is explicitly incorporated via the dissipation and dephasing terms in our noise model, which sets the effective entanglement-storage window available for multi-hop swapping. Through comprehensive numerical simulations with realistic experimental parameters, we analyze system performance across diverse deployment scenarios and network scales, examining both short-range and long-distance implementations. We identify critical factors influencing performance and scalability, demonstrating that cavity-magnon systems represent a viable and promising quantum repeater platform with significant integration advantages over existing quantum memory technologies.

Original languageEnglish
JournalIEEE Transactions on Quantum Engineering
DOIs
Publication statusAccepted/In press - 2026

Keywords

  • Distributed Quantum Computing (DQC)
  • Quantum Communication
  • Quantum Key Distribution (QKD)
  • Quantum Networks

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