Multi-phonon interactions between nitrogen-vacancy centers and nanomechanical resonators
arXiv:1908.03727 · doi:10.1103/PhysRevA.100.043825
Abstract
We investigate the multi-phonon interactions in a hybrid system composed of a nitrogen-vacancy center and a mechanical resonator.We show that, through appropriate sideband engineering analogy to the Mollow or Lamb-Dicke dynamics, the enhanced nonlinear interactions can dominate the coupled system. As an example, we show the preparation of nonclassical states of the mechanical motion and explore the quantum correlation of -phonon with the engineered dissipation,based on the large multi-phonon coupling strength attainable in this sideband structure. This work takes full advantage of the structure and coherence features of defect centers in diamond, and may be useful for quantum information processing.
10 pages, 7 figures
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- Motional -phonon Bundle States of A Trapped Atom with Clock Transitions
- Simulation of higher-order topological phases in 2D spin-phononic crystal networks
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