Quantum Photonic Interface for Tin-Vacancy Centers in Diamond

The realization of quantum networks critically depends on establishing efficient, coherent light-matter interfaces. Optically active spins in diamond have emerged as promising quantum nodes based on their spin-selective optical transitions, long-lived spin ground states, and potential for integratio...

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Veröffentlicht in:Physical review. X 2021-07, Vol.11 (3), p.031021, Article 031021
Hauptverfasser: Rugar, Alison E., Aghaeimeibodi, Shahriar, Riedel, Daniel, Dory, Constantin, Lu, Haiyu, McQuade, Patrick J., Shen, Zhi-Xun, Melosh, Nicholas A., Vučković, Jelena
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Sprache:eng
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Zusammenfassung:The realization of quantum networks critically depends on establishing efficient, coherent light-matter interfaces. Optically active spins in diamond have emerged as promising quantum nodes based on their spin-selective optical transitions, long-lived spin ground states, and potential for integration with nanophotonics. Tin-vacancy (SnV−) centers in diamond are of particular interest because they exhibit narrow-linewidth emission in nanostructures and possess long spin coherence times at temperatures above 1 K. However, a nanophotonic interface forSnV−centers has not yet been realized. Here, we report cavity enhancement of the emission ofSnV−centers in diamond. We integrateSnV−centers into one-dimensional photonic crystal resonators and observe a 40-fold increase in emission intensity. The Purcell factor of the coupled system is 25, resulting in a channeling of the majority of photons (90%) into the cavity mode. Our results pave the way for the creation of efficient, scalable spin-photon interfaces based onSnV−centers in diamond.
ISSN:2160-3308
2160-3308
DOI:10.1103/PhysRevX.11.031021