Characterization of hyperfine interaction between an NV electron spin and a first-shell 13C nuclear spin in diamond
arXiv:1603.09257 · doi:10.1103/PhysRevB.94.060101
Abstract
The Nitrogen-Vacancy (NV) center in diamond has attractive properties for a number of quantum technologies that rely on the spin angular momentum of the electron and the nuclei adjacent to the center. The nucleus with the strongest interaction is the C nuclear spin of the first shell. Using this degree of freedom effectively hinges on precise data on the hyperfine interaction between the electronic and the nuclear spin. Here, we present detailed experimental data on this interaction, together with an analysis that yields all parameters of the hyperfine tensor, as well as its orientation with respect to the atomic structure of the center.
5 pages, 4 figures
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- Efficient quantum gates for individual nuclear spin qubits by indirect control
- Non-flipping 13C spins in NV diamond: Hyperfine and Spatial Characteristics by DFT Simulation of the C510[NV]H252 Cluster
- Dynamics of frequency-swept nuclear spin optical pumping in powdered diamond at low magnetic fields
- Scalable quantum memory nodes using nuclear spins in Silicon Carbide
- Nonlinear Dynamics of a two-level system of a single spin driven beyond the rotating-wave approximation
- Room-Temperature entangled quantum processor on integrated semiconductor photonics platform
- Improved indirect control of nuclear spins in diamond NV centers
- Fast Quantum State Tomography in the Nitrogen Vacancy Center of Diamond
- Decoherence of Nuclear Spins in the Proximity of Nitrogen Vacancy Centers in Diamond
- Magnetic-field-induced delocalization in hybrid electron-nuclear spin ensembles
- Bloch-Siegert Shift in a Hybrid Quantum Register: Quantification and Compensation
- Pulse sequences for controlled 2- and 3-qubit gates in a hybrid quantum register
- Level anti-crossings of an NV center in diamond: Decoherence-free subspaces and 3D sensors of microwave magnetic fields
- Electron-to-nuclear spectral mapping via "Galton board" dynamic nuclear polarization
- Optimal photon energies for initialization of hybrid spin quantum registers of NV centers in diamond
- "Galton board" nuclear hyperpolarization
- Optically pumped spin polarization as a probe of many-body thermalization
- Implementing a Universal Set of Geometric Quantum Gates through Dressed-State assisted STA