4.8 Article

Heralded entanglement distribution between two absorptive quantum memories

Journal

NATURE
Volume 594, Issue 7861, Pages 41-+

Publisher

NATURE RESEARCH
DOI: 10.1038/s41586-021-03505-3

Keywords

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Funding

  1. National Key R&D Program of China [2017YFA0304100]
  2. National Natural Science Foundation of China [11774331, 11774335, 11504362, 11821404, 11654002]
  3. Anhui Initiative in Quantum Information Technologies [AHY020100]
  4. Key Research Program of Frontier Sciences, CAS [QYZDY-SSW-SLH003]
  5. Science Foundation of the CAS [ZDRW-XH-2019-1]
  6. Fundamental Research Funds for the Central Universities [WK2470000026, WK2470000029, WK2030000022]
  7. Youth Innovation Promotion Association, CAS

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This study demonstrates the experimental distribution of entanglement between absorptive quantum memories, successfully distributing maximally entangled states between the two quantum memories, paving the way for the construction of practical solid-state quantum repeaters and high-speed quantum networks.
Owing to the inevitable loss in communication channels, the distance of entanglement distribution is limited to approximately 100 kilometres on the ground(1). Quantum repeaters can circumvent this problem by using quantum memory and entanglement swapping(2). As the elementary link of a quantum repeater, the heralded distribution of two-party entanglement between two remote nodes has only been realized with built-in-type quantum memories(3-9). These schemes suffer from the trade-off between multiplexing capacity and deterministic properties and hence hinder the development of efficient quantum repeaters. Quantum repeaters based on absorptive quantum memories can overcome such limitations because they separate the quantum memories and the quantum light sources. Here we present an experimental demonstration of heralded entanglement between absorptive quantum memories. We build two nodes separated by 3.5 metres, each containing a polarization-entangled photon-pair source and a solid-state quantum memory with bandwidth up to 1 gigahertz. A joint Bell-state measurement in the middle station heralds the successful distribution of maximally entangled states between the two quantum memories with a fidelity of 80.4 +/- 2.2 per cent (+/- 1 standard deviation). The quantum nodes and channels demonstrated here can serve as an elementary link of a quantum repeater. Moreover, the wideband absorptive quantum memories used in the nodes are compatible with deterministic entanglement sources and can simultaneously support multiplexing, which paves the way for the construction of practical solid-state quantum repeaters and high-speed quantum networks.

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