English

Rethinking Quantum Networking with Advances in Fiber Technology

Quantum Physics 2026-03-26 v1

Abstract

Recent comparisons of quantum repeater protocols have highlighted the strong near-term potential of multiplexed two-way architectures for long-distance quantum communication. At the same time, advances in hollow-core fiber (HCF) technology motivate a re-examination of the physical transmission medium as an architectural lever in quantum network design. In this work, we compare emerging anti-resonant HCFs against conventional silica single-mode fibers (SMFs) in multiplexed two-way quantum repeater networks. We evaluate their performance under both telecom and memory-native transmission, accounting for frequency-conversion overheads, coupling efficiencies, memory decoherence, and operational noise. We find that HCF significantly outperforms SMF across a wide range of regimes. With memory-native transmission, HCF yields up to an order of magnitude improvement in secret-key rate per channel use under realistic conversion efficiencies. Even at telecom wavelengths, HCF enables larger optimal repeater spacing, improving rate--cost tradeoffs and reducing repeater requirements. We further quantify the role of memory quality, hardware efficiency, detector and conversion losses, and two-qubit gate noise in shaping these gains. These results show that recent advances in HCF materially expand the design space of practical terrestrial quantum repeater networks.

Keywords

Cite

@article{arxiv.2603.23718,
  title  = {Rethinking Quantum Networking with Advances in Fiber Technology},
  author = {Prateek Mantri and Michael S. Bullock and Aditya Tripathi and Robert Kwolek and Rajveer Nehra and Don Towsley},
  journal= {arXiv preprint arXiv:2603.23718},
  year   = {2026}
}

Comments

22 pages, 11 figures

R2 v1 2026-07-01T11:36:21.311Z