Time-averaging within the excited state of the nitrogen-vacancy centre in diamond
arXiv:0902.2256 · doi:10.1088/1367-2630/11/6/063007
Abstract
The emission intensity of diamond samples containing nitrogen-vacancy centres are measured as a function of magnetic field along a <111> direction for various temperatures. At low temperatures the responses are sample and stress dependent and can be modeled in terms of the previous understanding of the 3E excited state fine structure which is strain dependent. At room temperature the responses are largely sample and stress independent, and modeling involves invoking a strain independent excited state with a single zero field splitting of 1.42 GHz. The change in behaviour is attributed to a temperature dependent averaging process over the components of the excited state orbital doublet. It decouples orbit and spin and at high temperature the spin levels become independent of any orbit splitting. Thus the models can be reconciled and the parameters for low and high temperatures are shown to be consistent.
16 pages, 10 figures; fonts fixed and reference corrected
References in corpus (9)
- Dynamic polarization of single nuclear spins by optical pumping of NV color centers in diamond at room temperature
- Stark shift control of single optical centers in diamond
- Coherent Population Trapping of Single Spins in Diamond Under Optical Excitation
- Polarization and readout of coupled single spins 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
- Room-temperature manipulation and decoherence of a single spin in diamond
- Coherence of an optically illuminated single nuclear spin qubit