Transmodal Fabry-Pérot Resonance: Theory and Realization with Elastic Metamaterials
arXiv:1609.05266 · doi:10.1103/PhysRevLett.118.205901
Abstract
We discovered a new transmodal Fabry-Pérot resonance that one elastic-wave mode is maximally transmitted to another when the phase difference of two dissimilar modes through an anisotropic layer is exactly odd multiples of π. Unlike the well-established Fabry-Pérot resonance, the transmodal resonance must involve two coupled elastic-wave modes, longitudinal and shear. The formation of wiggly transmodal transmission spectra is due to structural instability appearing in anisotropic mode-coupled elastic-media. Experiments with elastic metamaterials confirmed our findings which can play a critical role in shear-mode ultrasound applications.
4 main figures
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