Department of Applied Physics, Chalmers University of Technology , 41296 Göteborg, Sweden.
Nano Lett. 2015 Mar 11;15(3):1952-8. doi: 10.1021/nl504802r. Epub 2015 Feb 3.
The possibility of achieving optical magnetism at visible frequencies using plasmonic nanostructures has recently been a subject of great interest. The concept is based on designing structures that support plasmon modes with electron oscillation patterns that imitate current loops, that is, magnetic dipoles. However, the magnetic resonances are typically spectrally narrow, thereby limiting their applicability in, for example, metamaterial designs. We show that a significantly broader magnetic response can be realized in plasmonic pentamers constructed from metal-insulator-metal (MIM) sandwich particles. Each MIM unit acts as a magnetic meta-atom and the optical magnetism is rendered quasi-broadband through hybridization of the in-plane modes. We demonstrate that scattering spectra of individual MIM pentamers exhibit multiple Fano resonances and a broad subradiant spectral window that signals the magnetic interaction and a hierarchy of coupling effects in these intricate three-dimensional nanoparticle oligomers.
使用等离子体纳米结构在可见光频率下实现光学磁性最近引起了极大的兴趣。该概念基于设计支持等离子体模式的结构,这些模式的电子振荡模式模仿电流环,即磁偶极子。然而,磁共振通常光谱很窄,从而限制了它们在例如超材料设计中的应用。我们表明,由金属-绝缘体-金属(MIM)夹层颗粒构成的等离子体五角体可以实现更宽的磁性响应。每个 MIM 单元充当磁性元原子,并且通过平面内模式的杂化实现准宽带的光学磁性。我们证明,单个 MIM 五角体的散射谱表现出多个 Fano 共振和一个宽的亚辐射光谱窗口,这表明了这些复杂的三维纳米粒子低聚物中的磁性相互作用和耦合效应的层次结构。