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A scalable cavity-based spin-photon interface in a photonic integrated circuit

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arxiv 2402.18057 v1 pith:Y2D4PBHN submitted 2024-02-28 quant-ph physics.optics

A scalable cavity-based spin-photon interface in a photonic integrated circuit

classification quant-ph physics.optics
keywords quantumphotonicspin-photonbuildingcenterscircuitdevicesfind
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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A central challenge in quantum networking is transferring quantum states between different physical modalities, such as between flying photonic qubits and stationary quantum memories. One implementation entails using spin-photon interfaces that combine solid-state spin qubits, such as color centers in diamond, with photonic nanostructures. However, while high-fidelity spin-photon interactions have been demonstrated on isolated devices, building practical quantum repeaters requires scaling to large numbers of interfaces yet to be realized. Here, we demonstrate integration of nanophotonic cavities containing tin-vacancy (SnV) centers in a photonic integrated circuit (PIC). Out of a six-channel quantum micro-chiplet (QMC), we find four coupled SnV-cavity devices with an average Purcell factor of ~7. Based on system analyses and numerical simulations, we find with near-term improvements this multiplexed architecture can enable high-fidelity quantum state transfer, paving the way towards building large-scale quantum repeaters.

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