High-frequency and high-field optically detected magnetic resonance of nitrogen-vacancy centers in diamond
arXiv:1502.03420 · doi:10.1063/1.4908528
Abstract
We present the development of an optically detected magnetic resonance (ODMR) system, which enables us to perform the ODMR measurements of a single defect in solids at high frequencies and high magnetic fields. Using the high-frequency and high-field ODMR system, we demonstrate 115 GHz continuous-wave and pulsed ODMR measurements of a single nitrogen-vacancy (NV) center in a diamond crystal at the magnetic field of 4.2 Tesla as well as investigation of field dependence ( Tesla) of the longitudinal relaxation time () of NV centers in nanodiamonds.
11 pages and 3 figures
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- Terahertz Emission From Diamond Nitrogen-Vacancy Centers
- Demonstration of NV-detected C NMR at 4.2 T
- Order-of-Magnitude SNR Improvement for High-Field EPR Spectrometers via 3D-Printed Quasioptical Sample Holders