Scaling laws for the bifurcation-escape rate in a nanomechanical resonator
arXiv:1409.6971 · doi:10.1103/PhysRevE.92.050903
Abstract
We report on experimental and theoretical studies of the fluctuation-induced escape time from a metastable state of a nanomechanical Duffing resonator in cryogenic environment. By tuning in situ the non-linear coefficient we could explore a wide range of the parameter space around the bifurcation point, where the metastable state becomes unstable. We measured in a relaxation process the distribution of the escape times. We have been able to verify its exponential distribution and extract the escape rate . We investigated the scaling of with respect to the distance to the bifurcation point and , finding an unprecedented quantitative agreement with the theoretical description of the stochastic problem. Simple power scaling laws turn out to hold in a large region of the parameter's space, as anticipated by recent theoretical predictions. These unique findings, implemented in a model dynamical system, are relevant to all systems experiencing under-damped saddle-node bifurcation.
5 pages, 4 figures
References in corpus (8)
- Self-consistent theory of molecular switching
- Activation barrier scaling and crossover for noise-induced switching in a micromechanical parametric oscillator
- Paths of fluctuation induced switching
- Frequency and phase noise of ultra-high Q silicon nitride nanomechanical resonators
- Interplay of driving and frequency noise in the spectra of vibrational systems
- Time-domain response of atomically thin nanomechanical resonators
- In-situ comprehensive calibration of a tri-port nano-electro-mechanical device
- Nonlinear parametric amplification in a tri-port nanoelectromechanical device
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