Robust multi-qubit quantum network node with integrated error detection.
P-J StasYan Qi HuanB MachielseE N KnallA SuleymanzadeB PingaultMadison SutulaSophie W DingC M KnautD R AssumpcaoY-C WeiM K BhaskarRalf RiedingerD D SukachevHongkun ParkMarko LoncarD S LevonianMikhail D LukinPublished in: Science (New York, N.Y.) (2022)
Long-distance quantum communication and networking require quantum memory nodes with efficient optical interfaces and long memory times. We report the realization of an integrated two-qubit network node based on silicon-vacancy centers (SiVs) in diamond nanophotonic cavities. Our qubit register consists of the SiV electron spin acting as a communication qubit and the strongly coupled silicon-29 nuclear spin acting as a memory qubit with a quantum memory time exceeding 2 seconds. By using a highly strained SiV, we realize electron-photon entangling gates at temperatures up to 1.5 kelvin and nucleus-photon entangling gates up to 4.3 kelvin. We also demonstrate efficient error detection in nuclear spin-photon gates by using the electron spin as a flag qubit, making this platform a promising candidate for scalable quantum repeaters.
Keyphrases
- molecular dynamics
- density functional theory
- monte carlo
- working memory
- room temperature
- single molecule
- energy transfer
- living cells
- transition metal
- loop mediated isothermal amplification
- solar cells
- squamous cell carcinoma
- label free
- high resolution
- high throughput
- early stage
- high speed
- single cell
- sensitive detection