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Thin film bulk acoustic wave resonator (FBAR) devices supporting simultaneously multiple resonance modes have been designed for gravimetric sensing.
The common solution to solve this problem is to design absorbers with multiple resonance modes.
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The multiple plasmonic resonance modes are highly sensitive to the change of analyte refractive index and thickness, and the frequency sensitivity of each resonance mode can reach up to 1.402, 1.687 and 1.643 THz per refractive index unit, respectively.
A three-dimensional graphene metamaterial structure consisting of dielectric pillar arrays covered by graphene monolayer with metal layer underneath is proposed and investigated, which can realize the efficient excitations of multiple plasmonic resonance modes under incident terahertz (THz) wave.
The low frequency resonance modes of the multiple side branch system have been predicted by means of acoustic models, of which the validity has been tested experimentally.
Multiple peaks of the ME response were observed corresponding to different contour resonance modes of the piezocrystals.
The multiple-reflected and mode-converted body waves eventually construct infinite sets of vibration resonance modes within the plate.
Firstly, it is difficult to simultaneously achieve nearly perfect absorption at multiple different frequency bands (> 3) due to different optimal dielectric thicknesses required for the different resonance modes.
The SiNWs show strong absorption at their resonance modes.
Comparing the superradiant plasmon resonance modes, we can conclude the Fano resonance arises from stacking influence.
Finally, resolving the field distributions of the resonance modes enables us to determine the mode volume Vm[22].
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