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All-optical formation of coherent dark states of silicon-vacancy spins in diamond.


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Authors

Pingault, Benjamin 
Becker, Jonas N 
Schulte, Carsten HH 
Arend, Carsten 
Hepp, Christian 

Abstract

Spin impurities in diamond can be versatile tools for a wide range of solid-state-based quantum technologies, but finding spin impurities that offer sufficient quality in both photonic and spin properties remains a challenge for this pursuit. The silicon-vacancy center has recently attracted much interest because of its spin-accessible optical transitions and the quality of its optical spectrum. Complementing these properties, spin coherence is essential for the suitability of this center as a spin-photon quantum interface. Here, we report all-optical generation of coherent superpositions of spin states in the ground state of a negatively charged silicon-vacancy center using coherent population trapping. Our measurements reveal a characteristic spin coherence time, T2*, exceeding 45 nanoseconds at 4 K. We further investigate the role of phonon-mediated coupling between orbital states as a source of irreversible decoherence. Our results indicate the feasibility of all-optical coherent control of silicon-vacancy spins using ultrafast laser pulses.

Description

Keywords

quant-ph, quant-ph, cond-mat.mes-hall

Journal Title

Phys Rev Lett

Conference Name

Journal ISSN

0031-9007
1079-7114

Volume Title

113

Publisher

American Physical Society (APS)
Sponsorship
Engineering and Physical Sciences Research Council (EP/J007544/1)
European Research Council (209636)
We gratefully acknowledge financial support by the University of Cambridge, the European Research Council (FP7/2007-2013)/ERC Grant Agreement No. 209636, and FP7 Marie Curie Initial Training Network SNANO3. This research has been partially funded by the European Community’s Seventh Framework Programme (FP7/2007-2013) under Grant Agreement No. 611143 (DIADEMS). A. I. T. and T. G. thank EPSRC Programme Grant No. EP/J007544/1 for support. Ion implantation was performed at and supported by RUBION, the central unit of the Ruhr-Universität Bochum. We thank D. Rogalla for the implantation, C. Pauly for SIL fabrication, the Sheffield group for their hospitality during the vector magnet measurements, and A. Lenhard for the Monte Carlo simulation of the intensity autocorrelation, as well as J. Barnes, J. Hansom, H. S. Knowles, J. M. Taylor, J. Eschner, and G. Morigi for helpful discussions.