Luo Yijie, Yang Ruisheng, Xie Lingyun, Xu Weijie, Fan Yuancheng, Wei Zeyong, Wang Zhanshan, Cheng Xinbin
Opt Express. 2024 Jun 3;32(12):21594-21605. doi: 10.1364/OE.524006.
Recent progress in metagratings highlights the promise of high-performance wavefront engineering devices, notably for their exterior capability to steer beams with near-unitary efficiency. However, the narrow operating bandwidth of conventional metagratings remains a significant limitation. Here, we propose and experimentally demonstrate a dual-layer metagrating, incorporating enhanced interlayer couplings to realize high-efficiency and broadband anomalous reflection within the microwave frequency band. The metagrating facilitated by both intralayer and interlayer couplings is designed through the combination of eigenmode expansion (EME) algorithm and particle swarm optimization (PSO) to significantly streamline the computational process. Our metagrating demonstrates the capacity to reroute a normally incident wave to +1 order diffraction direction across a broad spectrum, achieving an average efficiency approximately 90% within the 14.7 to 18 GHz range. This study may pave the way for future applications in sophisticated beam manipulations, including spatial dispersive devices, by harnessing the intricate dynamics of multi-layer metagratings with complex interlayer and intralayer interactions.
超颖光栅的最新进展凸显了高性能波前工程器件的前景,特别是其具有以接近单位效率操纵光束的卓越能力。然而,传统超颖光栅狭窄的工作带宽仍然是一个重大限制。在此,我们提出并通过实验证明了一种双层超颖光栅,其结合了增强的层间耦合,以在微波频段内实现高效和宽带异常反射。通过本征模展开(EME)算法和粒子群优化(PSO)相结合的方式设计了由层内和层间耦合促进的超颖光栅,以显著简化计算过程。我们的超颖光栅展示了将正常入射波重新路由到宽频谱上的 +1 级衍射方向的能力,在 14.7 至 18 GHz 范围内实现了约 90% 的平均效率。通过利用具有复杂层间和层内相互作用的多层超颖光栅的复杂动力学,这项研究可能为包括空间色散器件在内的复杂光束操纵的未来应用铺平道路。