Hybrid quantum system with nitrogen-vacancy centers in diamond coupled to surface phonon polaritons in piezomagnetic superlattices
arXiv:1807.02750 · doi:10.1103/PhysRevApplied.10.024011
Abstract
We investigate a hybrid quantum system where an ensemble of nitrogen-vacancy (NV) centers in diamond is interfaced with a piezomagnetic superlattice that supports surface phonon polaritons (SPhPs). We show that the strong magnetic coupling between the collective spin waves in the NV spin ensemble and the quantized SPhPs can be realized, thanks to the subwavelength nature of the SPhPs and relatively long spin coherence times. The magnon-polariton coupling allows different modes of the SPhPs to be mapped and orthogonally stored in different spatial modes of excitation in the solid medium. Because of its easy implementation and high tunability, the proposed hybrid structure with NV spins and piezoactive superlattices could be used for quantum memory and quantum computation.
14 pages, 4 figures, accepted by Phys. Rev. Applied
References in corpus (14)
- Strong coupling between surface plasmon polaritons and emitters
- Theory of surface plasmons and surface-plasmon polaritons
- Sub-diffractional, volume-confined polaritons in a natural hyperbolic material: hexagonal boron nitride
- Quantum spin Hall effect of light
- Strong Coupling of a Spin Ensemble to a Superconducting Resonator
- Subwavelength vacuum lattices and atom-atom interactions in photonic crystals
- Controlled coupling of a single nitrogen-vacancy center to a silver nanowire
- Strong magnetic coupling of an ultracold gas to a superconducting waveguide cavity
- Quantum computing with an electron spin ensemble
- Hybrid quantum device with nitrogen-vacancy centers in diamond coupled to carbon nanotubes
- Theory of the strong coupling between quantum emitters and propagating surface plasmons
- Protecting a Spin Ensemble against Decoherence in the Strong-Coupling Regime of Cavity QED
- Holographic quantum computing
- Single-photon excitation of surface plasmon polaritons
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