Experimental Quantification of Nonlinear Mode Coupling in Nanomechanical Resonators using Multi-tone Excitation
Chris F. D. Wattjes, Zichao Li, Minxing Xu, Richard A. Norte, Peter G. Steeneken, Farbod Alijani

TL;DR
This paper presents a multi-tone spectroscopy method to experimentally quantify nonlinear modal couplings in nanomechanical resonators, enabling direct measurement of coupling strengths and improved modeling.
Contribution
The authors introduce a novel multi-tone spectroscopy technique for directly measuring nonlinear coupling coefficients in multimode resonators.
Findings
Successfully measured ten pairwise nonlinear coupling parameters in nanostring resonators.
Reconstructed device-specific nonlinear reduced-order models that match finite element simulations.
Demonstrated the method's general applicability to various mechanical and hybrid resonant systems.
Abstract
Nonlinear modal interactions in resonant systems govern a wide range of phenomena, with broad relevance across modern physics and engineering. Yet, experimentally determining the strength of nonlinear coupling in multimode resonators remains highly challenging. Here, we introduce a multi-tone spectroscopy method for identifying nonlinear coupling coefficients directly from experimental data. Our approach employs dual-tone excitation near selected resonances which, in combination with additional probing tones at higher-order modes, generates sideband responses associated with specific modal couplings. These spectral signatures are analyzed using an inverse reconstruction procedure to quantitatively determine the corresponding nonlinear coupling strengths in the frequency domain. Using this method, we determine ten pairwise nonlinear coupling parameters across five modes of highly…
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