Nanophotonic all-optical devices have been enthusiastically studied to overcome the speed bottleneck of electrical devices. Recently, chalcogenide phase change material Ge2Sb2Te5 (GST) based active metasurfaces have emerged as a novel platform as complement of all-optical device. GST has two phase, so called amorphous and crystalline phases that can be changed within nanosecond scale by applying external thermal stimuli. Hence, various ultrafast 2-level switchable GST based meta-devices have been proposed and demonstrated. However, since only two switching levels are provided, there are limitations in applying to various photonic fields. In this paper, we expand its switching functionality to three-level through designing two different sizes of GST nanorod that exhibits different heat generation density in case of top-hat shape light illumination. Thanks to this thermo-optical phenomenon, we can obtain partial phase changed state, so called intermediate state once the appropriate intensity of control light is illuminated. Harnessing intermediate state, we propose novel cryptography platform that can provide high security level encryption while providing ultrafast communication speed.
We numerically analyzed the refractive index sensing performance of the two-dimensional array of plasmonic V-shaped grooves. The structural parameters are optimized to show a sharp and large reflectance dip with desired sensing region (n=1.33). Acquiring the sensitivity of the environmental refractive index as 400 nm/RIU in the visible region, FWHM of the dip is ~5 nm. It shows that the proposed structure has extreme value of quality factor and good extinction ratio. The localized mode has the hot spot at the bottom of the grooves so that localized sensing based on magnetic field enhancement is possible. Moreover, the localized mode is dependent on the tapered angle of the grooves, not the opening ratio. The performance of the dual V-shaped grooves is also discussed. The array of the closely located grooves has nearly identical reflectance spectra but a moderate amount of dip shift exists. As well as obtaining refractive index sensing by this configuration, magnetic field hot spot generation by coherent excitation can be applied to highly localized sensing and enhancing nonlinear processes.
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