Floquet dynamics in quantum measurement of mechanical motion
Liu Qiu, Itay Shomroni, Marie A. Ioannou, Nicolas Piro, Daniel Malz,, Andreas Nunnenkamp, Tobias J. Kippenberg

TL;DR
This paper demonstrates how Floquet dynamics, induced by multiple pump tones and Kerr nonlinearities, can modify quantum measurement outcomes in optomechanical systems, with implications for quantum control and Floquet engineering.
Contribution
It introduces a theoretical and experimental framework for understanding Floquet dynamics in multimode optomechanical systems with Kerr nonlinearities, revealing new effects on quantum measurements.
Findings
Floquet dynamics modify motional sideband asymmetry.
Large frequency separation suppresses Floquet effects.
Theoretical model accurately describes observed phenomena.
Abstract
The radiation-pressure interaction between one or more laser fields and a mechanical oscillator gives rise to a wide range of phenomena: from sideband cooling and backaction-evading measurements to pondermotive and mechanical squeezing to entanglement and motional sideband asymmetry. In many protocols, such as dissipative mechanical squeezing, multiple lasers are utilized, giving rise to periodically driven optomechanical systems. Here we show that in this case, Floquet dynamics can arise due to presence of Kerr-type nonlinearities, which are ubiqitious in optomechanical systems. Specifically, employing multiple probe tones, we perform sideband asymmetry measurements, a macroscopic quantum effect, on a silicon optomechanical crystal sideband-cooled to 40% ground-state occupation. We show that the Floquet dynamics, resulting from the presence of multiple pump tones, gives rise to an…
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