Nanodiamonds carrying quantum emitters with almost lifetime-limited linewidths
arXiv:1602.03391 · doi:10.1088/1367-2630/18/7/073036
Abstract
Nanodiamonds (NDs) hosting optically active defects are an important technical material for applications in quantum sensing, biological imaging, and quantum optics. The negatively charged silicon vacancy (SiV) defect is known to fluoresce in molecular sized NDs (1 to 6 nm) and its spectral properties depend on the quality of the surrounding host lattice. This defect is therefore a good probe to investigate the material properties of small NDs. Here we report unprecedented narrow optical transitions for SiV colour centers hosted in nanodiamonds produced using a novel high-pressure high-temperature (HPHT) technique. The SiV zero-phonon lines were measured to have an inhomogeneous distribution of 1.05 nm at 5 K across a sample of numerous NDs. Individual spectral lines as narrow as 354 MHz were measured for SiV centres in nanodiamonds smaller than 200 nm, which is four times narrower than the best SiV line previously reported for nanodiamonds. Correcting for apparent spectral diffusion yielded a homogeneous linewith of about 200 MHz, which is close to the width limit imposed by the radiative lifetime. These results demonstrate that the direct HPHT synthesis technique is capable of producing nanodiamonds with high crystal lattice quality, which are therefore a valuable technical material.
References in corpus (8)
- Indistinguishable photons from separated silicon-vacancy centers in diamond
- Cavity QED with Diamond Nanocrystals and Silica Microspheres
- All-optical initialization, readout, and coherent preparation of single silicon-vacancy spins in diamond
- Electron-phonon processes of the silicon-vacancy centre in diamond
- Deterministic coupling of a single silicon-vacancy color center to a photonic crystal cavity in diamond
- Photophysics of single silicon vacancy centers in diamond: implications for single photon emission
- Hybrid Group IV Nanophotonic Structures Incorporating Diamond Silicon-Vacancy Color Centers
- Addressing a single NV spin with a macroscopic dielectric microwave cavity
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