We review recent advances towards the realization of quantum networks based on atom-like solid-state quantum emitters coupled to nanophotonic devices. Specifically, we focus on experiments involving the negatively charged silicon-vacancy color center in diamond. These emitters combine homogeneous, coherent optical transitions and a long-lived electronic spin quantum memory. We discuss optical and spin properties of this system at cryogenic temperatures and describe experiments where silicon-vacancy centers are coupled to nanophotonic devices. Finally, we discuss experiments demonstrating quantum nonlinearities at the single-photon level and two-emitter entanglement in a single nanophotonic device.
@article{arxiv.1712.06693,
title = {Quantum optics with diamond color centers coupled to nanophotonic devices},
author = {Alp Sipahigil and Mikhail D. Lukin},
journal= {arXiv preprint arXiv:1712.06693},
year = {2017}
}
Comments
Lecture notes for the Les Houches Summer School, Session CVII--Current Trends in Atomic Physics, July 2016. 35 pages and 9 figures