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Trapped Ion Quantum Computing

Memory-assisted measurement-device-independent quantum key distribution

arXiv
Authors: Christiana Panayi, Mohsen Razavi, Xiongfeng Ma, Norbert Lütkenhaus

Year

2013

Paper ID

32729

Status

Preprint

Abstract Read

~2 min

Abstract Words

143

Citations

N/A

Abstract

A protocol with the potential of beating the existing distance records for conventional quantum key distribution (QKD) systems is proposed. It borrows ideas from quantum repeaters by using memories in the middle of the link, and that of measurement-device-independent QKD, which only requires optical source equipment at the user's end. For certain fast memories, our scheme allows a higher repetition rate than that of quantum repeaters, thereby requiring lower coherence times. By accounting for various sources of nonideality, such as memory decoherence, dark counts, misalignment errors, and background noise, as well as timing issues with memories, we develop a mathematical framework within which we can compare QKD systems with and without memories. In particular, we show that with the state-of-the-art technology for quantum memories, it is possible to devise memory-assisted QKD systems that, at certain distances of practical interest, outperform current QKD implementations.

Why This Paper Matters

  • This paper contributes to the Trapped-Ion Quantum Computing research area in the Quantum Articles archive.
  • It adds a 2013 reference point for readers tracking recent quantum research.
  • A protocol with the potential of beating the existing distance records for conventional quantum key distribution (QKD) systems is proposed.

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