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Multipolar interference effects in nanophotonics

机译:纳米光子学中的多极干涉效应

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摘要

Scattering of electromagnetic waves by an arbitrary nanoscale object can be characterized by a multipole decomposition of the electromagnetic field that allows one to describe the scattering intensity and radiation pattern through interferences of dominating multipole modes excited. In modern nanophotonics, both generation and interference of multipole modes start to play an indispensable role, and they enable nanoscale manipulation of light with many related applications. Here, we review the multipolar interference effects in metallic, metal–dielectric and dielectric nanostructures, and suggest a comprehensive view on many phenomena involving the interferences of electric, magnetic and toroidal multipoles, which drive a number of recently discussed effects in nanophotonics such as unidirectional scattering, effective optical antiferromagnetism, generalized Kerker scattering with controlled angular patterns, generalized Brewster angle, and non-radiating optical anapoles. We further discuss other types of possible multipolar interference effects not yet exploited in the literature and envisage the prospect of achieving more flexible and advanced nanoscale control of light relying on the concepts of multipolar interference through full phase and amplitude engineering.This article is part of the themed issue ‘New horizons for nanophotonics’.
机译:任意纳米尺度物体对电磁波的散射都可以通过电磁场的多极分解来表征,该分解允许人们通过主导的多极模激发的干涉来描述散射强度和辐射方向图。在现代的纳米光子学中,多极子模式的产生和干涉都开始发挥不可或缺的作用,并且它们可以在许多相关应用中实现光的纳米级操纵。在这里,我们回顾了金属,金属-电介质和介电纳米结构中的多极干涉效应,并对涉及电,磁和环形多极干涉的许多现象提出了全面的看法,这些现象驱动了纳米光子学中最近讨论的许多效应,例如单向效应。散射,有效的光学反铁磁性,具有受控角度模式的广义Kerker散射,广义布鲁斯特角和非辐射光学偶极子。我们进一步讨论了文献中尚未开发的其他类型的可能的多极干扰效应,并展望了通过全相位和幅度工程依靠多极干扰的概念实现更灵活,更先进的光纳米级控制的前景。主题为“纳米光子学的新视野”。

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