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- W2965395041 abstract "Quantum networks require functional nodes consisting of stationary registers with the capability of high-fidelity quantum processing and storage, which efficiently interface with photons propagating in an optical fiber. We report a significant step towards realization of such nodes using a diamond nanocavity with an embedded silicon-vacancy (SiV) color center and a proximal nuclear spin. Specifically, we show that efficient SiV-cavity coupling (with cooperativity C>30) provides a nearly deterministic interface between photons and the electron spin memory, featuring coherence times exceeding 1 ms. Employing coherent microwave control, we demonstrate heralded single photon storage in the long-lived spin memory as well as a universal control over a cavity-coupled two-qubit register consisting of a SiV and a proximal C13 nuclear spin with nearly second-long coherence time, laying the groundwork for implementing quantum repeaters.Received 1 August 2019Revised 16 September 2019DOI:https://doi.org/10.1103/PhysRevLett.123.183602© 2019 American Physical SocietyPhysics Subject Headings (PhySH)Research AreasColor centersQuantum networksPhysical SystemsNanostructuresAtomic, Molecular & Optical" @default.
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- W2965395041 date "2019-10-30" @default.
- W2965395041 modified "2023-10-17" @default.
- W2965395041 title "Quantum Network Nodes Based on Diamond Qubits with an Efficient Nanophotonic Interface" @default.
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- W2965395041 doi "https://doi.org/10.1103/physrevlett.123.183602" @default.
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