Powell Alexander W, Whittaker Thomas E, Whittow William G, Sambles J Roy, Hibbins Alastair P
Centre for Metamaterial Research and Innovation, University of Exeter, Exeter EX4 4QL, U.K.
Wolfson School of Mechanical, Electrical and Manufacturing Engineering, Loughborough University, Loughborough LE11 3TU, U.K.
ACS Photonics. 2024 Mar 11;11(3):1156-1162. doi: 10.1021/acsphotonics.3c01617. eCollection 2024 Mar 20.
Geometries that replicate the behavior of metal nanostructures at much lower frequencies via texturing surfaces so they will support a surface wave have been a central pillar of metamaterials research. However, previous work has focused largely on geometries that can be reduced to symmetries in one or two dimensions, such as strips, flat planes, and cylinders. Shapes with isotropic responses in three dimensions are important for applications, such as radar scattering and the replication of certain nanoscale behaviors. This work presents a detailed exploration of the scattering behavior of 3D spherical "spoof plasmonic" metaparticles, based on the platonic solids. Their behavior is compared to an effective medium model through simulation and experiment, and the vast range of behaviors that can be produced from a metal sphere of a given radius via tuning its internal structure is explored in detail.
通过对表面进行纹理处理,从而在低得多的频率下复制金属纳米结构行为,以便支持表面波的几何结构,一直是超材料研究的核心支柱。然而,以往的工作主要集中在可简化为一或二维对称性的几何结构上,例如条带、平面和圆柱体。具有三维各向同性响应的形状对于诸如雷达散射和某些纳米级行为的复制等应用很重要。这项工作基于柏拉图立体,对三维球形“类表面等离激元”超粒子的散射行为进行了详细探究。通过模拟和实验将它们的行为与有效介质模型进行比较,并详细探究了通过调整给定半径金属球的内部结构可产生的广泛行为。