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单个全介质纳米盘簇中的磁环形偶极子响应。

Magnetic toroidal dipole response in individual all-dielectric nanodisk clusters.

作者信息

Yang Zhong-Jian, Deng Yan-Hui, Yu Ying, He Jun

机构信息

Hunan Key Laboratory of Super Microstructure and Ultrafast Process, School of Physics and Electronics, Central South University, Changsha, Hunan 410083, China.

State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics, Sun Yat-sen University, Guangzhou 510275, China.

出版信息

Nanoscale. 2020 May 21;12(19):10639-10646. doi: 10.1039/d0nr01440k.

DOI:10.1039/d0nr01440k
PMID:32373891
Abstract

Multipole electromagnetic resonances and their couplings are of crucial importance for both the fundamental understanding of light scattering by high-index all-dielectric nanostructures and lots of nanophotonic applications based on those nanostructures. Here, we show that magnetic dipole modes in a dielectric nanodisk cluster can easily form a magnetic toroidal dipole (MTD) mode. The cluster consists of five silicon nanodisks, where each nanodisk holds a magnetic dipole mode. These magnetic dipole modes can collectively couple with each other and form a MTD mode under suitable excitation. The MTD mode is confirmed by multipole expansion calculations and near field distributions, where two closed loops of magnetic field with opposite directions are seen. The response of the MTD is strong and comparable to that of a common electric dipole or magnetic dipole mode. It is also found that the MTD resonance is accompanied by an electric toroidal quadrupole mode in the cluster. The MTD mode is tunable by varying the geometries. We also fabricated silicon nanoparticle clusters and verified the MTD mode in the experiment. Our results illustrate the controllable excitation of strong high-order electromagnetic modes and these modes may open new opportunities for light manipulation at the nanoscale.

摘要

多极电磁共振及其耦合对于深入理解高折射率全介质纳米结构的光散射以及基于这些纳米结构的众多纳米光子应用至关重要。在此,我们展示了介电纳米盘簇中的磁偶极模式能够轻易形成磁环形偶极(MTD)模式。该簇由五个硅纳米盘组成,每个纳米盘都具有一个磁偶极模式。这些磁偶极模式能够在合适的激发条件下相互集体耦合并形成一个MTD模式。通过多极展开计算和近场分布证实了MTD模式,其中可以看到两个方向相反的磁场闭环。MTD的响应很强,与普通电偶极或磁偶极模式的响应相当。还发现MTD共振伴随着簇中的一个电环形四极模式。MTD模式可通过改变几何形状进行调谐。我们还制备了硅纳米颗粒簇并在实验中验证了MTD模式。我们的结果说明了强高阶电磁模式的可控激发,并且这些模式可能为纳米尺度的光操纵开辟新的机会。

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