Strong tunable spin-spin interaction in a weakly coupled nitrogen vacancy spin-cavity electromechanical system
arXiv:2006.09256 · doi:10.1103/PhysRevB.103.174106
Abstract
The long coherence time of a single nitrogen vacancy (NV) center spin in diamond is a crucial advantage for implementing quantum information processing. However, the realization of strong coupling between single NV spins is challenging. Here we propose a method to greatly enchance the interaction between two single NV spins in diamond which are only weakly coupled to an electromechanical cavity. Owing to the presence of a critical point for the linearized electromechanical subsystem, the coupling between a single NV spin and the high-frequency polariton (formed by the mechanical and cavity modes) can be fully decoupled, but the coupling between the single NV spin and the low-frequency polariton is however greatly enhanced. Thus, AC Stark shift of the single NV spin can be measured. With the low-frequency polariton as a quantum bus, a strong coupling between two single NV centers is achievable. This effective strong coupling can ensure coherent quantum-information exchange between two spin qubits in the weakly coupled spin-cavity elecromechanical system.
8 pages, 4 figures
References in corpus (22)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Optomechanically induced transparency
- Electromagnetically Induced Transparency and Slow Light with Optomechanics
- Beyond the Jaynes-Cummings model: circuit QED in the ultrastrong coupling regime
- Optomechanical entanglement between a movable mirror and a cavity field
- Circuit cavity electromechanics in the strong coupling regime
- Quantum technologies with hybrid systems
- Observation of the Bloch-Siegert Shift in a Qubit-Oscillator System in the Ultrastrong Coupling Regime
- Strong Coupling of a Spin Ensemble to a Superconducting Resonator
- Circuit Quantum Electrodynamics with a Spin Qubit
- Dynamic strain-mediated coupling of a single diamond spin to a mechanical resonator
- Squeezed Optomechanics with Phase-matched Amplification and Dissipation
- Coplanar Waveguide Resonators for Circuit Quantum Electrodynamics
- Resolved sidebands in a strain-coupled hybrid spin-oscillator system
- Phonon-induced spin-spin interactions in diamond nanostructures: application to spin squeezing
- Quantum computing with an electron spin ensemble
- Hybrid quantum device with nitrogen-vacancy centers in diamond coupled to carbon nanotubes
- Chip-integrated plasmonic cavity-enhanced single nitrogen-vacancy center emission
- Quantum entanglement distribution with hybrid parity gate
- Critical behavior in ultra-strong-coupled oscillators
- Fabrication Technology of and Symmetry Breaking in Superconducting Quantum Circuits
- Photon-Dressed Bloch-Siegert Shift in an Ultrastrongly Coupled Circuit Quantum Electrodynamical System
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