论文标题
Ultrathin全角双曲线跨表面反向电流基于载量等离子体的定向路由
Ultrathin All-Angle Hyperbolic Metasurface Retroreflectors Based on Directed Routing of Canalized Plasmonics
论文作者
论文摘要
可以在其原始频道中准确地重定向的自由空间中的事件波的反向电流为无线通信中的轻度操纵提供了前所未有的机会。但是,据我们所知,现有的设计倒流电流的方法遭受了笨重的尺寸,狭窄的角度宽度或耗时的后处理方法。在这里,提出了一种基于双曲线等离子体跨面的设计超薄和全角反向电流的方案。该方案的物理机制是自由空间中的行进波和双曲线等离子式跨曲面(HPMS)上的流动波之间的高效率全角跃迁。在这种情况下,强大的限制特征受益于增强的光 - 物质相互作用,使我们能够用极端超薄的结构路由和重新击退载元的SSP。为了证明该方案,设计和制造了厚度大致等于中心波长的逆转录器原型。进一步的实验研究获得了最大83.2%的最大效率,最大效率高达53°。该方案可以在目标检测,遥感和片上光控制设备中找到有希望的应用。
Retroreflectors that can accurately redirect the incident wave in free space back along its original channel provide unprecedented opportunities for light manipulation in wireless communication. However, to the best of our knowledge, the existing methods of designing retroreflectors suffer from either the bulky size, narrow angular bandwidth, or time-consuming post-processing. Here, a scheme of designing ultrathin and all-angle retroreflectors based on hyperbolic plasmonic metasurfaces is proposed and experimentally demonstrated. The physical mechanism underlying this scheme is the high-efficiency all-angle transition between the traveling waves in free space and the canalized spoof surface plasmon (SSP) on the hyperbolic plasmonic metasurfaces (HPMs). In this case, the strong confinement characteristic benefited from the enhanced light-matter interaction enables us to route and retroreflect the canalized SSP with extremely ultrathin structures. As proof of the scheme, a retroreflector prototype with a thickness approximately equal to the central wavelength is designed and fabricated. Further experimental investigation obtains a maximum efficiency of 83.2% and a half-power field of view up to 53°. This scheme can find promising applications in target detection, remote sensing, and diverse on-chip light control devices.