Symmetry-Breaking-Induced Frequency Combs in Graphene Resonators

Journal Article (2022)
Author(s)

A. Keşkekler (TU Delft - Dynamics of Micro and Nano Systems)

H. Arjmandi-Tash (TU Delft - Dynamics of Micro and Nano Systems)

PG Steeneken (Kavli institute of nanoscience Delft, TU Delft - Dynamics of Micro and Nano Systems, TU Delft - QN/Steeneken Lab)

Farbod Alijani (TU Delft - Dynamics of Micro and Nano Systems)

Research Group
Dynamics of Micro and Nano Systems
Copyright
© 2022 A. Keşkekler, H. Arjmandi Tash, P.G. Steeneken, F. Alijani
DOI related publication
https://doi.org/10.1021/acs.nanolett.2c00360
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 A. Keşkekler, H. Arjmandi Tash, P.G. Steeneken, F. Alijani
Research Group
Dynamics of Micro and Nano Systems
Issue number
15
Volume number
22
Pages (from-to)
6048-6054
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Abstract

Nonlinearities are inherent to the dynamics of two-dimensional materials. Phenomena-like intermodal coupling already arise at amplitudes of only a few nanometers, and a range of unexplored effects still awaits to be harnessed. Here, we demonstrate a route for generating mechanical frequency combs in graphene resonators undergoing symmetry-breaking forces. We use electrostatic force to break the membrane's out-of-plane symmetry and tune its resonance frequency toward a one-to-two internal resonance, thus achieving strong coupling between two of its mechanical modes. When increasing the drive level, we observe splitting of the fundamental resonance peak, followed by the emergence of a frequency comb regime. We attribute the observed physics to a nonsymmetric restoring potential and show that the frequency comb regime is mediated by Neimark bifurcation of the periodic solution. These results demonstrate that mechanical frequency combs and chaotic dynamics in 2D material resonators can emerge near internal resonances due to symmetry-breaking.