Abstract

AbstractMetasurfaces allow for the spatiotemporal variation of amplitude, phase, and polarization of optical wavefronts. Implementation of active tunability of metasurfaces promises compact flat optics capable of reconfigurable wavefront shaping. Phase‐change materials (PCMs) are a prominent material class enabling reconfigurable metasurfaces due to their large refractive index change upon structural transition. However, commonly employed laser‐induced switching of PCMs limits the achievable feature sizes and restricts device miniaturization. Thermal scanning‐probe‐induced local switching of the PCM germanium telluride is proposed to realize near‐infrared metasurfaces with feature sizes far below what is achievable with diffraction‐limited optical switching. The design is based on a planar multilayer and does not require fabrication of protruding resonators as commonly applied in the literature. Instead, it is numerically demonstrated that a broad‐band tuning of perfect absorption can be realized by the localized tip‐induced crystallization of the PCM. The spectral response of the metasurface is explained using resonance mode analysis and numerical simulations. To facilitate experimental realization, a theoretical description of the tip‐induced crystallization employing multiphysics simulations is provided to demonstrate the great potential for fabricating compact reconfigurable metasurfaces. The concept can be applied not only for plasmonic sensing and spatial frequency filtering, but also be transferred to all‐dielectric metasurfaces.

Highlights

  • This page was generated automatically upon download from the ETH Zurich Research Collection

  • Thermal scanning-probe-induced local switching of the Phase-change materials (PCMs) germanium telluride is proposed to realize near-infrared metasurfaces with feature sizes far below what is achievable with diffraction-limited optical switching

  • One common approach for active metasurfaces is to capitalize on the change of the material polarizability— either of the scatterer or its surroundings. This can be achieved, for example, by as commonly applied in the literature. It is numerically demonstrated modulation of the charge density in doped that a broad-band tuning of perfect absorption can be realized by the localized tip-induced crystallization of the PCM

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Summary

Journal Article

Author(s): Michel, Ann-Katrin Ursula; Meyer, Sebastian; Essing, Nicolas; Lassaline, Nolan; Lightner, Carin R.; Bisig, Samuel; Norris, David J.; Chigrin, Dmitry N.

ETH Library
Metasurfaces are flat optical elements constructed from a dense
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