Tunable parametric amplification of a graphene nanomechanical resonator in the nonlinear regime
arXiv:1909.13219 · doi:10.1088/1361-6528/abc9ea
Abstract
Parametric amplification is widely used in nanoelectro-mechanical systems to enhance the transduced mechanical signals. Although parametric amplification has been studied in different mechanical resonator systems, the nonlinear dynamics involved receives less attention. Taking advantage of the excellent electrical and mechanical properties of graphene, we demonstrate electrical tunable parametric amplification using a doubly clamped graphene nanomechanical resonator. By applying external microwave pumping with twice the resonant frequency, we investigate parametric amplification in the nonlinear regime. We experimentally show that the extracted coefficient of the nonlinear Duffing force α and the nonlinear damping coefficient η vary as a function of external pumping power, indicating the influence of higher-order nonlinearity beyond the Duffing (~x^3) and van der Pol (~x^2 dx/dt) types in our device. Even when the higher-order nonlinearity is involved, parametric amplification still can be achieved in the nonlinear regime. The parametric gain increases and shows a tendency of saturation with increasing external pumping power. Further, the parametric gain can be electrically tuned by the gate voltage with a maximum gain of 10.2 dB achieved at the gate voltage of 19 V. Our results will benefit studies on nonlinear dynamics, especially nonlinear damping in graphene nanomechanical resonators that has been debated in the community over past decade.
References in corpus (13)
- The electronic properties of graphene
- Ultrahigh electron mobility in suspended graphene
- Graphene mechanical oscillators with tunable frequency
- Optomechanical coupling between a multilayer graphene mechanical resonator and a superconducting microwave cavity
- Coupling graphene mechanical resonators to superconducting microwave cavities
- Dynamical strong coupling and parametric amplification in mechanical modes of graphene drums
- Digital and FM demodulation of a doubly-clamped single wall carbon nanotube oscillator: towards a nanotube cell phone
- Force sensitivity of multilayer graphene optomechanical devices
- Graphene ribbons with suspended masses as transducers in ultra-small nanoelectromechanical accelerometers
- Graphene optomechanics realized at microwave frequencies
- Nonlinear Damping in Graphene Resonators
- High-frequency stochastic switching of graphene resonators near room temperature
- Coherent phonon dynamics in spatially separated graphene mechanical resonators