论文标题
电介质mie空隙:限制空气中的光
Dielectric Mie Voids: Confining Light in Air
论文作者
论文摘要
操纵纳米级的光已成为MetadeVices,谐振表面,纳米级光传感器等方面的核心挑战,并且在很大程度上是基于分散和有损金属和二元的共振光限制的。在这里,我们通过实验实现了一种新型的介电纳米光子学策略:空气中光的共鸣次波限制。我们证明,在高索引介电宿主材料中创建的空隙支持具有非凡光学特性的局部谐振模式。由于空气中的限制,模式不会遭受介电宿主培养基的损失和分散。我们通过聚焦的离子束将碎片磨碎成散装硅晶片,并在实验中实现这些共振mie空隙,并在实验中证明了共鸣的光线限制至265 nm(4.68 eV)的UV光谱范围。此外,我们利用纳米级颜色的明亮,强烈和自然的色彩。谐振介电MIE空隙与介电纳米颗粒的组合将是元整张和其他微级和纳米级光学元件的未来设计的参数空间的两倍以上,并将其操作推向蓝色和紫外光谱范围。特别是,此扩展将使新型天线和结构设计受益于对空隙内的模态磁场的完整访问以及高点材料的几乎免费选择。
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.