Spin dynamics in the optical cycle of single nitrogen-vacancy centres in diamond
arXiv:1010.1192 · doi:10.1088/1367-2630/13/2/025013
Abstract
We investigate spin-dependent decay and intersystem crossing in the optical cycle of single negatively-charged nitrogen-vacancy (NV) centres in diamond. We use spin control and pulsed optical excitation to extract both the spin-resolved lifetimes of the excited states and the degree of optically-induced spin polarization. By optically exciting the centre with a series of picosecond pulses, we determine the spin-flip probabilities per optical cycle, as well as the spin-dependent probability for intersystem crossing. This information, together with the indepedently measured decay rate of singlet population provides a full description of spin dynamics in the optical cycle of NV centres. The temperature dependence of the singlet population decay rate provides information on the number of singlet states involved in the optical cycle.
11 pages, 5 figures
References in corpus (10)
- High-sensitivity diamond magnetometer with nanoscale resolution
- Universal dynamical decoupling of a single solid-state spin from a spin bath
- Scanning magnetic field microscope with a diamond single-spin sensor
- Strongly enhanced photon collection from diamond defect centres under micro-fabricated integrated solid immersion lenses
- Optical properties of the nitrogen-vacancy singlet levels in diamond
- Excited-state spectroscopy of single NV defects in diamond using optically detected magnetic resonance
- Excited-state spectroscopy using single-spin manipulation in diamond
- New infrared emission of the NV centre in diamond: Zeeman and uniaxial stress studies
- Integrated Diamond Optics for Single Photon Detection
- Coupling of nitrogen-vacancy centers in diamond to a GaP waveguide