Coupling Enhancement and Symmetrization in Dissipative Optomechanical Systems
Cheng Shang, H. Z. Shen

TL;DR
This paper proposes a method to enhance and symmetrize optomechanical interactions using dual laser driving and cross-Kerr effects, enabling exploration of nonlinear effects at the few-photon level within a circuit QED framework.
Contribution
It introduces a symmetric optomechanical model with enhanced coupling via a two-laser scheme and cross-Kerr nonlinearity, facilitating the study of few-photon effects in dissipative systems.
Findings
Enhanced optomechanical coupling into the ultrastrong regime.
Identification of optimal conditions for reciprocal photon-phonon transport.
Analysis of optical scattering behavior in symmetric dissipative systems.
Abstract
Observing few-photon optomechanical effects remains a significant challenge in optomechanical systems. To investigate intrinsic radiation-pressure-induced nonlinear effects in the few-photon regime, it is essential to strengthen the interaction between few photons and a finite number of phonons. In this work, we enhance the radiation-pressure nonlinearity by introducing a two-laser coherent driving scheme together with an enhanced cross-Kerr nonlinearity, resulting in a setup that can be effectively described within a circuit QED platform. By properly tuning the two driving laser fields and the cross-Kerr interaction so that the effective optomechanical coupling becomes real, we theoretically establish a symmetric optomechanical model in which the photon and phonon modes exhibit analogous fluctuation dynamics. Within this framework, we analyze the optimal reciprocal transport of the…
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