Abstract:
High-spin defect centers in crystal matrices are used in quantum computing technologies, highly sensitive sensors, and single-photon sources. In this work, optically active nitrogen-vacancy color centers NV− in a 28Si-enriched (nuclear spin I=0) 6H-28SiC crystal have been studied using the photoinduced (λ=980 nm) high-frequency (94 GHz, 3.4 T) pulsed electron paramagnetic resonance method at a temperature of T=150 K. Three structurally nonequivalent types of NV− centers with axial symmetry have been identified and their spectroscopic parameters have been determined. Long spin–lattice, T1=1.3 ms, and spin–spin, T2=59μs, ensemble relaxation times of NV− centers with extremely narrow (450 kHz) absorption lines allow highly selective excitation of resonant transitions between sublevels mI caused by the weak hyperfine interaction (A≈1 MHz) with 14N (I=1) nuclei for the quantum manipulation of the electron spin magnetization.
Citation:
F. F. Murzakhanov, M. A. Sadovnikova, G. V. Mamin, D. V. Shurtakova, E. N. Mokhov, O. P. Kazarova, M. R. Gafurov, “Optical spin initialization of nitrogen vacancy centers in a 28Si-enriched 6H-SiC crystal for quantum technologies”, Pis'ma v Zh. Èksper. Teoret. Fiz., 119:8 (2024), 587–592; JETP Letters, 119:8 (2024), 593–598
This publication is cited in the following 2 articles:
Larisa R. Latypova, Irina N. Gracheva, Darya V. Shurtakova, Fadis F. Murzakhanov, Margarita A. Sadovnikova, Georgy V. Mamin, Marat R. Gafurov, J. Phys. Chem. C, 2024