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September 20, 2025Science Advances0 citationsOpen Access

Quantum cryptography integrating an optical quantum memory

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HMHadriel MamannTNThomas NiedduFHFélix Hoffet

Key Points

  • The implementation of a quantum cryptography protocol showcases advanced security features through optical quantum memory.
  • A crucial aspect is the ability to store quantum information efficiently while maintaining low noise levels for secure communication.
  • The protocol leverages Wiesner's unforgeable quantum money primitive with a unique storage step, enhancing its practical applicability.
  • This research opens up avenues for improved network functionalities and wider applications of quantum memory technologies.

Abstract

Developments in scalable quantum networks rely critically on optical quantum memories, which are key components enabling the storage of quantum information. These memories play a pivotal role for entanglement distribution and long-distance quantum communication, with remarkable advances achieved in this context. However, optical memories have broader applications, and their storage and buffering capabilities can benefit a wide range of future quantum technologies. Here, we present the demonstration of a cryptography protocol incorporating an intermediate quantum memory layer. Specifically, we implement Wiesner’s unforgeable quantum money primitive with a storage step, rather than as an on-the-fly procedure. This protocol imposes stringent requirements on storage efficiency and noise level to reach a secure regime. We demonstrate the implementation with polarization encoding of weak coherent states of light and a high-efficiency cold atom–based quantum memory and validate the full scheme. Our results showcase a major capability, opening broader avenues for quantum memory utilization and network functionalities.

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Cite This Study

Mamann et al. (2025) studied this question.

synapsesocial.com/papers/68d46fc631b076d99fa69af0https://doi.org/10.1126/sciadv.adx3223
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