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Enhancing secure key rates of satellite QKD using a quantum dot single-photon source

Quantum Physics 2023-05-02 v1

Abstract

Global quantum secure communication can be achieved using quantum key distribution (QKD) with orbiting satellites. Established techniques use attenuated lasers as weak coherent pulse (WCP) sources, with so-called decoy-state protocols, to generate the required single-photon-level pulses. While such approaches are elegant, they come at the expense of attainable final key due to inherent multi-photon emission, thereby constraining secure key generation over the high-loss, noisy channels expected for satellite transmissions. In this work we improve on this limitation by using true single-photon pulses generated from a semiconductor quantum dot (QD) embedded in a nanowire, possessing low multi-photon emission (<106<10^{-6}) and an extraction system efficiency of -15 dB (or 3.1%). Despite the limited efficiency, the key generated by the QD source is greater than that generated by a WCP source under identical repetition rate and link conditions representative of a satellite pass. We predict that with realistic improvements of the QD extraction efficiency to -4.0 dB (or 40%), the quantum-dot QKD protocol outperforms WCP-decoy-state QKD by almost an order of magnitude. Consequently, a QD source could allow generation of a secure key in conditions where a WCP source would simply fail, such as in the case of high channel losses. Our demonstration is the first specific use case that shows a clear benefit for QD-based single-photon sources in secure quantum communication, and has the potential to enhance the viability and efficiency of satellite-based QKD networks.

Keywords

Cite

@article{arxiv.2009.11818,
  title  = {Enhancing secure key rates of satellite QKD using a quantum dot single-photon source},
  author = {Poompong Chaiwongkhot and Sara Hosseini and Arash Ahmadi and Brendon L. Higgins and Dan Dalacu and Philip J. Poole and Robin L. Williams and Michael E. Reimer and Thomas Jennewein},
  journal= {arXiv preprint arXiv:2009.11818},
  year   = {2023}
}

Comments

6 pages, 5 figures

R2 v1 2026-06-23T18:46:28.295Z