Zhang Hao Chi, Zhang Le Peng, He Pei Hang, Xu Jie, Qian Cheng, Garcia-Vidal Francisco J, Cui Tie Jun
State Key Laboratory of Millimeter Waves, Southeast University, 210096 Nanjing, China.
Departamento de Física Teórica de la Materia Condensada and Condensed Matter Physics Center (IFIMAC), Universidad Autónoma de Madrid, Madrid, Spain.
Light Sci Appl. 2020 Jul 2;9:113. doi: 10.1038/s41377-020-00355-y. eCollection 2020.
Perfect lenses, superlenses and time-reversal mirrors can support and spatially separate evanescent waves, which is the basis for detecting subwavelength information in the far field. However, the inherent limitations of these methods have prevented the development of systems to dynamically distinguish subdiffraction-limited signals. Utilizing the physical merits of spoof surface plasmon polaritons (SPPs), we demonstrate that subdiffraction-limited signals can be transmitted on planar integrated SPP channels with low loss, low channel interference, and high gain and can be radiated with a very low environmental sensitivity. Furthermore, we show how deep subdiffraction-limited signals that are spatially coupled can be distinguished after line-of-sight wireless transmission. For a visualized demonstration, we realize the high-quality wireless communication of two movies on subwavelength channels over the line of sight in real time using our plasmonic scheme, showing significant advantages over the conventional methods.
完美透镜、超透镜和时间反转镜能够支持倏逝波并在空间上对其进行分离,这是在远场中检测亚波长信息的基础。然而,这些方法的固有局限性阻碍了能够动态区分亚衍射极限信号的系统的发展。利用类表面等离激元极化激元(SPP)的物理特性,我们证明了亚衍射极限信号能够在平面集成SPP通道上以低损耗、低通道干扰和高增益进行传输,并且能够以非常低的环境敏感度进行辐射。此外,我们展示了在视距无线传输后,如何区分空间耦合的深亚衍射极限信号。为了进行可视化演示,我们利用我们的等离子体方案实时实现了两部电影在亚波长通道上的视距高质量无线通信,显示出相对于传统方法的显著优势。