Dielectric Mie Voids: Confining Light in Air
arXiv:2205.07729 · doi:10.1038/s41377-022-01015-z
Abstract
Manipulating light on the nanoscale has become a central challenge in metadevices, resonant surfaces, nanoscale optical sensors, and many more, and it is largely based on resonant light confinement in dispersive and lossy metals and dielectrics. Here, we experimentally implement a novel strategy for dielectric nanophotonics: Resonant subwavelength confinement of light in air. We demonstrate that voids created in high-index dielectric host materials support localized resonant modes with exceptional optical properties. Due to the confinement in air, the modes do not suffer from the loss and dispersion of the dielectric host medium. We experimentally realize these resonant Mie voids by focused ion beam milling into bulk silicon wafers and experimentally demonstrate resonant light confinement down to the UV spectral range at 265 nm (4.68 eV). Furthermore, we utilize the bright, intense, and naturalistic colours for nanoscale colour printing. The combination of resonant dielectric Mie voids with dielectric nanoparticles will more than double the parameter space for the future design of metasurfaces and other micro- and nanoscale optical elements and push their operation into the blue and UV spectral range. In particular, this extension will enable novel antenna and structure designs which benefit from the full access to the modal field inside the void as well as the nearly free choice of the high-index material.
References in corpus (5)
- Directional visible light scattering by silicon nanoparticles
- Magnetic light
- High-Q supercavity modes in subwavelength dielectric resonators
- Fluorescence-Detected Circular Dichroism of a Chiral Molecular Monolayer with Dielectric Metasurfaces
- Experimental demonstration of linear and spinning Janus dipoles for polarisation and wavelength selective near-field coupling
Cited by in corpus (6)
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- Nanometer-resolution 3D Tomographic and Vectorial Near-field Imaging in Dielectric Optical Resonators
- Manipulating the Quasi-Normal Modes of Radially Symmetric Resonators
- Size, Shape, and Material matter: All-optical Mie void sensor for complex nanoplastic mixtures