| Literature DB >> 27738014 |
A Sipahigil1, R E Evans1, D D Sukachev1,2,3, M J Burek4, J Borregaard1, M K Bhaskar1, C T Nguyen1, J L Pacheco5, H A Atikian4, C Meuwly4, R M Camacho5, F Jelezko6, E Bielejec5, H Park1,7, M Lončar4, M D Lukin8.
Abstract
Efficient interfaces between photons and quantum emitters form the basis for quantum networks and enable optical nonlinearities at the single-photon level. We demonstrate an integrated platform for scalable quantum nanophotonics based on silicon-vacancy (SiV) color centers coupled to diamond nanodevices. By placing SiV centers inside diamond photonic crystal cavities, we realize a quantum-optical switch controlled by a single color center. We control the switch using SiV metastable states and observe optical switching at the single-photon level. Raman transitions are used to realize a single-photon source with a tunable frequency and bandwidth in a diamond waveguide. By measuring intensity correlations of indistinguishable Raman photons emitted into a single waveguide, we observe a quantum interference effect resulting from the superradiant emission of two entangled SiV centers.Entities:
Year: 2016 PMID: 27738014 DOI: 10.1126/science.aah6875
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728