Synthetic magnetism enhanced mechanical squeezing in Brillouin optomechanical system
D. R. Kenigoule Massembele, P. Djorw\'e, Souvik Agasti, K.S. Nisar,, A.K. Sarma, A.H. Abdel-Aty

TL;DR
This paper introduces a novel scheme utilizing synthetic magnetism in a Brillouin optomechanical system to generate large mechanical squeezing beyond the 3dB limit, with enhanced robustness against thermal noise.
Contribution
The work demonstrates a new method to achieve and control large mechanical squeezing using synthetic magnetism, surpassing traditional limits and robustness constraints.
Findings
Squeezing exceeds the 3dB limit with synthetic magnetism.
Squeezing remains robust against thermal noise.
Oscillatory squeezing behavior can be tuned via phase modulation.
Abstract
We propose a scheme to generate large amount of mechanical squeezing, far beyond the limit, which is based on synthetic magnetism in optomechanical system that hosts a Backward Stimulated Brillouin Scattering (BSBS) process. Our benchmark system consists of an acoustic mode coupled to two optical modes through the BSBS process, and a Duffing mechanical oscillator that couples to the same optical modes through the standard optomechanical radiation pressure. The synthetic magnetism comes from the modulation of the mechanical coupling between the acoustic and the mechanical mode. When there is no synthetic magnetism, a given amount of mechanical squeezing is generated in the system. This squeezing is mainly dependent on the BSBS process, and it is fragile against thermal noise. By switching on the synthetic magnetism, the degree of the generated squeezing is greatly enhanced and…
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Taxonomy
TopicsMechanical and Optical Resonators · Force Microscopy Techniques and Applications
