2026

  1. Unconditional Authentication in Quantum Key Distribution via Hybrid Entangled Physical Unclonable Functions

    Nicolas Laurent-Puig, Mina Doosti, Adriano Innocenzi, Eleni Diamanti

    arXiv preprint arXiv:2605.04650 · 2026

    • Quantum key distribution
    • Authentication
    • Physical unclonable functions

    arXiv PDF

    Abstract

    Quantum Key Distribution (QKD) enables Information-Theoretically Secure (ITS) key exchange, robust even against future quantum computing threats. However, a fundamental limitation of QKD is the requirement for an authenticated classical channel, which necessitates a pre-shared secret key. In this work, we address this challenge by adopting a Hybrid Entangled Physical Unclonable Function (PUF) protocol for authentication. We demonstrate that this PUF-based method generates an ITS initial key under minimal explicit hardware assumptions. This approach allows us to experimentally perform a fully ITS-authenticated entanglement-based QKD protocol that relies solely on such assumptions, effectively eliminating the need for pre-shared secrets. This represents a significant step towards the practical realization of quantum network protocols using lightweight, readily available hardware assumptions, without weakening security guarantees.

    BibTeX
    @misc{laurentpuig2026unconditional,
      title         = {Unconditional Authentication in Quantum Key Distribution via Hybrid Entangled Physical Unclonable Functions},
      author        = {Laurent-Puig, Nicolas and Doosti, Mina and Innocenzi, Adriano and Diamanti, Eleni},
      year          = {2026},
      eprint        = {2605.04650},
      archivePrefix = {arXiv},
      primaryClass  = {quant-ph},
    }
    

2024

  1. A Practical Protocol for Quantum Oblivious Transfer from One-Way Functions

    Eleni Diamanti, Alex B. Grilo, Adriano Innocenzi, Pascal Lefebvre, Verena Yacoub, Álvaro Yángüez

    arXiv preprint arXiv:2406.09110 · 2024 · Updated May 2026 (v4)

    • Quantum cryptography
    • Oblivious transfer

    arXiv PDF

    Abstract

    We present a new simulation-secure quantum oblivious transfer (QOT) protocol based on one-way functions in the plain model. With a focus on practical implementation, our protocol surpasses prior works in efficiency, promising feasible experimental realization. We address potential experimental errors and their correction, offering analytical expressions to facilitate the analysis of the required quantum resources. Technically, we achieve simulation security for QOT through an equivocal and relaxed-extractable quantum bit commitment.

    BibTeX
    @misc{diamanti2024practical,
      title         = {A Practical Protocol for Quantum Oblivious Transfer from One-Way Functions},
      author        = {Diamanti, Eleni and Grilo, Alex B. and Innocenzi, Adriano and Lefebvre, Pascal and Yacoub, Verena and Yángüez, Álvaro},
      year          = {2024},
      eprint        = {2406.09110},
      archivePrefix = {arXiv},
      primaryClass  = {quant-ph},
    }