Interaction of Nitrogen-Vacancy Centers in Diamond with a Dense Ensemble of Carbon-13
arXiv:2310.06359 · doi:10.1116/5.0180456
Abstract
The nitrogen-vacancy center in diamond attracts a lot of attention in sensing applications, mainly for temperature, magnetic field, and rotation measurements. Nuclear spins of carbon-13 surrounding the nitrogen-vacancy center can be used as a memory or sensing element. In the current work, a diamond plate with a relatively large concentration of carbon-13 was synthesized and examined. The spectrum of optically detected magnetic resonance was recorded and analyzed in a magnetic field range of 5-200 G. A strain-independent measurement technique of carbon-13 isotope concentration based on the analysis of magnetic resonance spectra was developed. Additionally, narrow features in the spectrum were detected and understood.
References in corpus (5)
- Excited-state spectroscopy using single-spin manipulation in diamond
- High-Sensitivity Temperature Sensing Using an Implanted Single Nitrogen-Vacancy Center Array in Diamond
- Room-temperature high-speed nuclear-spin quantum memory in diamond
- Nuclear quadrupole resonance spectroscopy with a femtotesla diamond magnetometer
- Optically Detected Magnetic Resonances of Nitrogen-Vacancy Ensembles in 13C Enriched Diamond