Controllable nonreciprocal phonon laser in a hybrid photonic molecule based on directional quantum squeezing

Author:

Zhou Yue-Ru1,Zhang Qing-Feng1,Liu Fei-Fei1,Han Yu-Hong1ORCID,Gao Yong-Pan1ORCID,Fan Ling1,Zhang Ru1,Cao Cong1ORCID

Affiliation:

1. Beijing University of Posts and Telecommunications

Abstract

Here, a scheme for a controllable nonreciprocal phonon laser is proposed in a hybrid photonic molecule system consisting of a whispering-gallery mode (WGM) optomechanical resonator and a χ(2)-nonlinear WGM resonator, by directionally quantum squeezing one of two coupled resonator modes. The directional quantum squeezing results in a chiral photon interaction between the resonators and a frequency shift of the squeezed resonator mode with respect to the unsqueezed bare mode. We show that the directional quantum squeezing can modify the effective optomechanical coupling in the optomechanical resonator, and analyze the impacts of driving direction and squeezing extent on the phonon laser action in detail. Our analytical and numerical results indicate that the controllable nonreciprocal phonon laser action can be effectively realized in this system. The proposed scheme uses an all-optical and chip-compatible approach without spinning resonators, which may be more beneficial for integrating and packaging of the system on a chip. Our proposal may provide a new route to realize integratable phonon devices for on-chip nonreciprocal phonon manipulations, which may be used in chiral quantum acoustics, topological phononics, and acoustical information processing.

Funder

State Key Laboratory of Information Photonics and Optical Communications

National Natural Science Foundation of China

BUPT-RAINIER Joint Laboratory of Virtual Reality Innovation Technology and Application

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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