<p>Quantum networks that distribute entanglement among remote nodes will unlock transformational technologies in quantum computing, communication and sensing<sup><CitationRef AdditionalCitationIDS="CR2 CR3" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR4">4</CitationRef></sup>. However, state-of-the-art networks<sup><CitationRef AdditionalCitationIDS="CR6 CR7 CR8 CR9 CR10 CR11 CR12 CR13" CitationID="CR5">5</CitationRef>–<CitationRef CitationID="CR14">14</CitationRef></sup> use only a single optically addressed qubit per node; this constrains both the quantum communication bandwidth and memory resources, greatly impeding scalability. Solid-state platforms<sup><CitationRef AdditionalCitationIDS="CR16 CR17 CR18 CR19 CR20 CR21 CR22 CR23" CitationID="CR15">15</CitationRef>–<CitationRef CitationID="CR24">24</CitationRef></sup> provide a valuable resource for multiplexed quantum networking in which multiple spectrally distinguishable qubits can be hosted in nano-scale volumes. Here we harness this resource by implementing a two-node network consisting of several rare-earth ions coupled to nanophotonic cavities<sup><CitationRef AdditionalCitationIDS="CR26 CR27 CR28 CR29 CR30" CitationID="CR25">25</CitationRef>–<CitationRef CitationID="CR31">31</CitationRef></sup>. This is accomplished with a protocol that entangles distinguishable <sup>171</sup>Yb ions through frequency-erasing photon detection combined with real-time quantum feedforward. This method is robust to slow optical frequency fluctuations occurring on timescales longer than a single entanglement attempt: a universal challenge amongst solid-state emitters. We demonstrate the enhanced functionality of these multi-emitter nodes in two ways. First, we mitigate the bottlenecks to the&#xa0;entanglement distribution rate through multiplexed entanglement of two remote ion pairs<sup><CitationRef CitationID="CR32">32</CitationRef>,<CitationRef CitationID="CR33">33</CitationRef></sup>. Second, we prepare multipartite W-states comprising three distinguishable ions as a resource for advanced quantum networking protocols<sup><CitationRef CitationID="CR34">34</CitationRef>,<CitationRef CitationID="CR35">35</CitationRef></sup>. These results lay the groundwork for scalable quantum networking based on rare-earth ions.</p>

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Multiplexed entanglement of multi-emitter quantum network nodes

  • A. Ruskuc,
  • C.-J. Wu,
  • E. Green,
  • S. L. N. Hermans,
  • W. Pajak,
  • J. Choi,
  • A. Faraon

摘要

Quantum networks that distribute entanglement among remote nodes will unlock transformational technologies in quantum computing, communication and sensing14. However, state-of-the-art networks514 use only a single optically addressed qubit per node; this constrains both the quantum communication bandwidth and memory resources, greatly impeding scalability. Solid-state platforms1524 provide a valuable resource for multiplexed quantum networking in which multiple spectrally distinguishable qubits can be hosted in nano-scale volumes. Here we harness this resource by implementing a two-node network consisting of several rare-earth ions coupled to nanophotonic cavities2531. This is accomplished with a protocol that entangles distinguishable 171Yb ions through frequency-erasing photon detection combined with real-time quantum feedforward. This method is robust to slow optical frequency fluctuations occurring on timescales longer than a single entanglement attempt: a universal challenge amongst solid-state emitters. We demonstrate the enhanced functionality of these multi-emitter nodes in two ways. First, we mitigate the bottlenecks to the entanglement distribution rate through multiplexed entanglement of two remote ion pairs32,33. Second, we prepare multipartite W-states comprising three distinguishable ions as a resource for advanced quantum networking protocols34,35. These results lay the groundwork for scalable quantum networking based on rare-earth ions.