论文标题

反设计的元结构以及可重构耦合器以计算前向散射

Inverse-designed Metastructures Together with Reconfigurable Couplers to Compute Forward Scattering

论文作者

Nikkhah, Vahid, Tzarouchis, Dimitrios C., Hoorfar, Ahmad, Engheta, Nader

论文摘要

基于波浪的模拟计算以反设计的元结构形式和马赫齐汉的网格(MZI)(MZI)最近由于其在模仿线性操作员中的能力而获得了相当大的关注,通过构图乘法,互换矩阵以及通过构造和差异方程进行构造和差异构造波浪互动,从而执行矢量矩阵乘法,求解矩阵。在这里,我们结合了这两个平台,以提出一个基于波浪的MetadeVice,该仪表可以计算电磁向前散射问题中的散射场。提出的设备由两个子系系统组成:一组具有适当反馈系统的可重构耦合器和一个反设计的不均匀材料块。当用给定的入射波(矩阵倒置)照亮时,第一个子系统计算散射器中偶发造成的偶极极化的大小和相。第二个子系统在给定检测点(矢量 - 矩阵乘法)计算散射场的幅度和相位。我们讨论了此MetadeVice的功能,并通过几个示例,通过将该设备的仿真结果与全波数值模拟和数值评估的矩阵反转进行比较,从理论上评估了其性能。我们还强调,由于第一部分是可重构的,因此所提出的设备可用于散射器和不同的入射激励的不同介电常数,而无需更改逆设计的部分。我们提出的设备可以为在各种散射方案中快速计算提供多功能平台。

Wave-based analog computing in the forms of inverse-designed metastructures and the meshes of Mach-Zehnder interferometers (MZI) have recently received considerable attention due to their capability in emulating linear operators, performing vector-matrix multiplication, inverting matrices, and solving integral and differential equations, via electromagnetic wave interaction and manipulation in such structures. Here, we combine these two platforms to propose a wave-based metadevice that can compute scattered fields in electromagnetic forward scattering problems. The proposed device consists of two sub-systems: a set of reconfigurable couplers with a proper feedback system and an inverse-designed inhomogeneous material block. The first sub-system computes the magnitude and phase of the dipole polarization induced in the scatterers when illuminated with a given incident wave (matrix inversion). The second sub-system computes the magnitude and phase of the scattered fields at given detection points (vector-matrix multiplication). We discuss the functionality of this metadevice, and through several examples, we theoretically evaluate its performance by comparing the simulation results of this device with full-wave numerical simulations and numerically evaluated matrix inversion. We also highlight that since the first section is reconfigurable, the proposed device can be used for different permittivity distributions of the scatterer and different incident excitations without changing the inverse-designed section. Our proposed device may provide a versatile platform for rapid computation in various scattering scenarios.

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