Design of defect spins in piezoelectric aluminum nitride for solid-state hybrid quantum technologies
arXiv:1602.01079
Abstract
Spin defects in wide-band gap semiconductors are promising systems for the realization of quantum bits, or qubits, in solid-state environments. To date, defect qubits have only been realized in materials with strong covalent bonds. Here, we introduce a strain-driven scheme to rationally design defect spins in functional ionic crystals, which may operate as potential qubits. In particular, using a combination of state-of-the-art ab-initio calculations based on hybrid density functional and many-body perturbation theory, we predicted that the negatively charged nitrogen vacancy center in piezoelectric aluminum nitride exhibits spin-triplet ground states under realistic uni- and bi-axial strain conditions; such states may be harnessed for the realization of qubits. The strain-driven strategy adopted here can be readily extended to a wide range of point defects in other wide-band gap semiconductors, paving the way to controlling the spin properties of defects in ionic systems for potential spintronic technologies.
In press. 32 pages, 4 figures, 3 tables, Scientific Reports 2016
References in corpus (11)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Coherent control of single spins in silicon carbide at room temperature
- Self-consistent hybrid functional for condensed systems
- Consistent set of band parameters for the group-III nitrides AlN, GaN, and InN
- Dynamic strain-mediated coupling of a single diamond spin to a mechanical resonator
- Ab initio supercell calculations on nitrogen-vacancy center in diamond: its electronic structure and hyperfine tensors
- Aluminum nitride as a new material for chip-scale optomechanics and nonlinear optics
- Electrically and mechanically tunable electron spins in silicon carbide color centers
- State-selective intersystem crossing in nitrogen-vacancy centers
- Phonon Cooling and Lasing with Nitrogen-Vacancy Centers in Diamond
- Determination of the nitrogen vacancy as a shallow compensating center in GaN doped with divalent metals