论文标题
基于编码超材料和逆设计的可编程多功能等离子波导系统
Programmable Multifunctional Plasmonic Waveguide System based on Coding Metamaterials and Inverse Design
论文作者
论文摘要
在本文中,我们提出了一个可编程的等离子波导系统(PPWS),以基于金属编码超材料(MCM)和逆设计技术实现几种不同的功能。由于PPW中的MCMS是可重编程的,因此无需花费大量时间来考虑功能与结构之间的关系。为了证明PPW的有效性,我们利用它来实现多个过滤功能,包括带挡和带通滤波器。模拟结果表明,根据遗传算法,粒子群优化,多渗透性直接二进制搜索和模拟退火,过滤器的性能得到改善。特别是,窄带滤波器的带宽和质量因子可以达到6.5 nm和200.5。除了简单的滤波功能外,还可以使用PPW(例如等离子体诱导的类似透明度的效应)获得了一些相对复杂的传输特性。总之,由于其优化时间和稳定的性能,遗传算法被认为是我们系统最有效的逆设计方法。与以前的作品相比,我们提出的PPW不仅提供了获得有效,灵活和紧凑的等离子设备的一般框架,而且还显示了在光子设备上的逆设计的应用。
In this article, we propose a programmable plasmonic waveguide system (PPWS) to achieve several different functions based on metal coding metamaterials (MCMs) and inverse design technology. There is no need to spend much time on considering the relation between the function and the structure because the MCMs in the PPWS are reprogrammable. In order to demonstrate the effectiveness of the PPWS, we utilize it to achieve several filtering functions, including bandstop and bandpass filters. The simulation results exhibit that the performance of filters is improved based on genetic algorithm, particle swarm optimization, multi-traversal direct-binary search and simulated annealing. Especially, the bandwidth and quality factor for the narrow-band filter can reach 6.5 nm and 200.5. In addition to the simple filtering functions, some relatively complex transmission characteristics can be obtained by using the PPWS, such as plasmon-induced transparency-like effects. In conclusion, genetic algorithm is considered as the most efficient inverse design method for our system due to its less optimization time and stable performance. In comparison with the previous works, our proposed PPWS not only provides a general framework for obtaining an effective, flexible and compact plasmonic device but also shows the applications of inverse design on photonics devices.