论文标题
概括确切的多极扩展:复杂光子纳米结构中多极模式的密度
Generalizing the exact multipole expansion: Density of multipole modes in complex photonic nanostructures
论文作者
论文摘要
纳米光子结构的电磁响应的多极扩展是解释纳米磁效应的多功能工具,但它仅可访问受特定照明激发的模式。特别是对各种照明的研究需要多次昂贵的数值模拟。在这里,我们提出了一种形式主义,我们称为“广义极化”,其中我们结合了最近开发的精确多极分解[Alaee等,opt。通讯。 407,17-21(2018)]具有广义田间传播器的概念。在初始计算步骤之后,我们的方法允许即时获得任何照明的精确多极分解。最重要的是,由于所有可能的照明都包含在广义极化性中,因此我们的形式主义允许计算多极模式的总密度,而不管特定的照明如何,这对于常规的多极扩展是不可能的。最后,我们的方法直接提供了最佳的照明字段分布,该分布最大程度地将其与特定的多极模式相结合。形式主义对于纳米启发式的各种应用将非常有用,例如照明场工程或元原子设计,例如用于Huygens metasurfaces。我们提供了与Pygdm Python软件包兼容的数值开源实现。
The multipole expansion of a nano-photonic structure's electromagnetic response is a versatile tool to interpret optical effects in nano-optics, but it only gives access to the modes that are excited by a specific illumination. In particular the study of various illuminations requires multiple, costly numerical simulations. Here we present a formalism we call "generalized polarizabilities", in which we combine the recently developed exact multipole decomposition [Alaee et al., Opt. Comms. 407, 17-21 (2018)] with the concept of a generalized field propagator. After an initial computation step, our approach allows to instantaneously obtain the exact multipole decomposition for any illumination. Most importantly, since all possible illuminations are included in the generalized polarizabilities, our formalism allows to calculate the total density of multipole modes, regardless of a specific illumination, which is not possible with the conventional multipole expansion. Finally, our approach directly provides the optimum illumination field distributions that maximally couple to specific multipole modes. The formalism will be very useful for various applications in nano-optics like illumination-field engineering, or meta-atom design e.g. for Huygens metasurfaces. We provide a numerical open source implementation compatible with the pyGDM python package.