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Advanced Phase-Change Materials for Enhanced Meta-Displays

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arxiv 2105.01313 v1 pith:TPKW4DCL submitted 2021-05-04 physics.optics physics.app-ph

classification physics.opticsphysics.app-ph
keywords colorsmetasurfacestructuralall-dielectricantimonyapplicationsgeneratehigh-resolution
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Structural colors generated due to light scattering from static all-dielectric metasurfaces have successfully enabled high-resolution, high-saturation and wide-gamut color printing applications. Despite recent advances, most demonstrations of these structure-dependent colors lack post-fabrication tunability that hinders their applicability for front-end dynamic display technologies. Phase-change materials (PCMs), with significant contrast of their optical properties between their amorphous and crystalline states, have demonstrated promising potentials in reconfigurable nanophotonics. Herein, we leverage a tunable all-dielectric reflective metasurface made of a newly emerged class of low-loss optical PCMs with superb characteristics, i.e., antimony trisulphide (Sb$_2$S$_3$), antimony triselenide (Sb$_2$Se$_3$), and binary germanium-doped selenide (GeSe$_3$), to realize switchable, high-saturation, high-efficiency and high-resolution structural colors. Having polarization sensitive building blocks, the presented metasurface can generate two different colors when illuminated by two orthogonally polarized incident beams. Such degrees of freedom (i.e., structural state and polarization) enable a single reconfigurable metasurface with fixed geometrical parameters to generate four distinct wide-gamut colors suitable for a wide range of applications, including tunable full-color printing and displays, information encryption, and anti-counterfeiting.

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  1. Phase-change metasurfaces for reconfigurable image processing

    physics.optics 2024-12 conditional novelty 5.0 of 10

    A simulated Sb2S3 metasurface switches between edge detection in its amorphous state and bright-field imaging in its crystalline state, using Mie resonances to shape the angular transmission.

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