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Deep-subwavelength engineering of stealthy hyperuniformity

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arxiv 2410.07875 v1 pith:GLXKSPMV submitted 2024-10-10 physics.optics

classification physics.optics
keywords deep-subwavelengthdisorderedlightscalesangle-selectivebreakdowndisorderengineering
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Light behaviours in disordered materials have been of research interest primarily at length scales beyond or comparable to the wavelength of light, because order and disorder are often believed to be almost indistinguishable in the subwavelength regime according to effective medium theory (EMT). However, it was recently demonstrated that the breakdown of EMT occurs even at deep-subwavelength scales when interface phenomena, such as the Goos-Hanchen effect, dominate light flows. Here we develop the engineering of disordered multilayers at deep-subwavelength scales to achieve angle-selective manipulation of wave localization. To examine the disorder-dependent EMT breakdown, we classify the intermediate regime of microstructural phases between deep-subwavelength crystals and uncorrelated disorder through the concept of stealthy hyperuniformity (SHU). In this classification, we devise nontrivial order-to-disorder transitions by selectively tailoring the short-range and long-range order in SHU multilayers, achieving angle-selective control of wave localization. The result paves the way to the realization of deep-subwavelength disordered metamaterials, bridging the gap between the fields of disordered photonics and metamaterials.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Active Hyperuniform Networks of Chiral Magnetic Micro-Robotic Spinners

    cond-mat.soft 2025-05 conditional novelty 7.0 of 10

    Magnetic micro-robotic spinners with three binding sites self-assemble into stable disordered hyperuniform networks at up to about a thousand robots.

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