Direct observation of coherent energy transfer in nonlinear micro-mechanical oscillators
Changyao Chen, Dami\'an H. Zanette, David Czaplewski, Steven Shaw, and, Daniel L\'opez

TL;DR
This paper demonstrates a novel method to sustain stable, constant-amplitude oscillations in micro-mechanical systems without external energy input by using intrinsic mode coupling to transfer energy among vibrational modes.
Contribution
The study introduces a new dissipation engineering strategy leveraging nonlinear mode coupling to maintain oscillations without external energy, applicable to various physical systems.
Findings
Stable oscillations maintained without external energy supply.
Energy transfer occurs via nonlinear mode coupling.
Method demonstrated in microelectromechanical oscillators.
Abstract
Energy dissipation is an unavoidable phenomenon of physical systems that are directly coupled to an external environmental bath. The ability to engineer the processes responsible for dissipation and coupling is fundamental to manipulate the state of such systems. This is particularly important in oscillatory states whose dynamic response is used for many applications, e.g. micro and nano-mechanical resonators or sensing and timing, qubits for quantum engineering, and vibrational modes for optomechanical devices. In situations where stable oscillations are required, the energy dissipated by the vibrational modes is usually compensated by replenishment from external energy sources. Consequently, if the external energy supply is removed, the amplitude of oscillations start to decay immediately, since there is no means to restitute the energy dissipated. Here, we demonstrate a novel…
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