Coherent phonon manipulation in coupled mechanical resonators
Hajime Okamoto, Adrien Gourgout, Chia-Yuan Chang, Koji Onomitsu, Imran, Mahboob, Edward Yi Chang, Hiroshi Yamaguchi

TL;DR
This paper demonstrates dynamically tunable, ultra-strong coupling of nanomechanical resonators using parametric modulation, enabling coherent phonon transfer, superposition states, and potential quantum entanglement.
Contribution
It introduces a method for controlling coupling strength in nanomechanical resonators via parametric stress modulation, achieving ultra-strong coupling and multi-pump phonon interactions.
Findings
Coupling strength exceeds intrinsic dissipation by over four times.
Observation of phonon Rabi oscillations and superposition states.
Tunable non-linear multi-pump phonon interactions.
Abstract
Coupled mechanical oscillations were first observed in paired pendulum clocks in the mid-seventeenth century and were extensively studied for their novel sympathetic oscillation dynamics. In this era of nanotechnologies, coupled oscillations have again emerged as subjects of interest when realized in nanomechanical resonators for both practical applications and fundamental studies. However, a key obstacle to the further development of this architecture is the ability to coherently manipulate the coupled oscillations. This limitation arises as a consequence of the usually weak coupling between the constituent nanomechanical elements. Here, we report parametrically coupled mechanical resonators in which the coupling strength can be dynamically adjusted by modulating (pumping) the stress in the mechanical elements via a piezoelectric transducer. The parametric control enables the coupling…
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