Quenching nitrogen-vacancy center photoluminescence with infrared pulsed laser
arXiv:1302.2154 · doi:10.1088/1367-2630/15/3/033030
Abstract
Diamond nanocrystals containing Nitrogen-Vacancy (NV) color centers have been used in recent years as fluorescent probes for near-field and cellular imaging. In this work we report that an infrared (IR) pulsed excitation beam can quench the photoluminescence of NV color center in a diamond nanocrystal (size < 50 nm) with an extinction ratio as high as ~90%. We attribute this effect to the heating of the nanocrystal consecutive to multi-photon absorption by the diamond matrix. This quenching is reversible: the photoluminescence intensity goes back to its original value when the IR laser beam is turned off, with a typical response time of hundred picoseconds, allowing for a fast control of NV color center photoluminescence. We used this effect to achieve sub-diffraction limited imaging of fluorescent diamond nanocrystals on a coverglass. For that, as in Ground State Depletion super-resolution technique, we combined the green excitation laser beam with the control IR depleting one after shaping its intensity profile in a doughnut form, so that the emission comes only from the sub-wavelength size central part.
5 figures, 15 pages
References in corpus (5)
- A robust, scanning quantum system for nanoscale sensing and imaging
- Measurement and Control of Single Nitrogen-Vacancy Center Spins above 600 K
- Nanoscale magnetic field mapping with a single spin scanning probe magnetometer
- New infrared emission of the NV centre in diamond: Zeeman and uniaxial stress studies
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Cited by in corpus (8)
- Electron spin control of optically levitated nanodiamonds in vacuum
- Cooling the Motion of Diamond Nanocrystals in a Magneto-Gravitational Trap in High Vacuum
- Near-Infrared-Assisted Charge Control and Spin Readout of the Nitrogen-Vacancy Center in Diamond
- Integrated Single Photon Emitters
- Charge state dynamics of the nitrogen vacancy center in diamond under 1064 nm laser excitation
- Negative charge enhancement of near-surface nitrogen vacancy centers by multicolor excitation
- Fast optical modulation of the fluorescence from a single NV centre
- Sensing with near-infrared laser trapped fluorescent nanodiamonds