Achieving Strong Magnon Blockade through Magnon Squeezing in a Cavity Magnetomechanical System
arXiv:2308.06367 · doi:10.1002/andp.202300357
Abstract
We propose a scheme to achieve magnon (photon) blockade by using magnon squeezing within a cavity magnomechanical system under weak pump driving. Under ideal conditions, we observe a substantial magnon blockade effect, as well as simultaneous photon blockade. Moreover, both numerical and analytical results match perfectly, providing robust evidence of consistency. In addition to calculating optimal parametric gain and detuning values, we can improve the second-order correlation function. The proposed scheme will be a pioneering approach towards magnon (photon) blockade in experimental cavity magnomechanical systems.
6 pages
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Cited by in corpus (3)
- Enhanced Gaussian interferometric power, entanglement and Gaussian quantum steering in magnonics system with squeezed light
- Second-order correlation and squeezing of photons in cavities with ultrastrong magnon-photon interactions
- Nonreciprocal Macroscopic Entanglement through Magnon Squeezing in a Cavity Magnomechanics