Wu Rui Yuan, He Shi, Wu Jun Wei, Bao Lei, Cui Tie Jun
Institute of Electromagnetic Space, Southeast University, Nanjing 210096, China.
State Key Laboratory of Millimeter Waves, Southeast University, Nanjing 210096, China.
Nanophotonics. 2023 Mar 1;12(13):2433-2442. doi: 10.1515/nanoph-2022-0764. eCollection 2023 Jun.
The digital and programmable metasurfaces, as opposed to conventional metasurfaces, offer a more sophisticated method of collaborating information and physics, showcasing several real-time controls to electromagnetic (EM) ways in succinct ways. In this work, we propose a multi-frequency amplitude-programmable (MFAP) metasurface with multiple frequency channels to enhance the presentation and manipulation of EM data. With this metasurface, the reflected amplitudes can be simultaneously and independently encoded between high (digit "1") and low (digit "0") levels. The amplitude code is unique, which exhibits both reflection coefficients and radiation patterns to allow for flexible multi-functional EM operations with frequency. For instance, the MFAP metasurface can be used to design innovative communication systems by transmitting various EM signals individually across the channels in time domain. It is also possible to carry out multi-bit transmissions by mixing these frequency channels. By introducing complex coding patterns in space domain, it is possible to manipulate EM powers with greater precision. A square-split ring meta-atom that can achieve stable single-frequency amplitude control and multi-frequency 1 bit amplitude-programmable features is described as a proof-of-concept. Varactors loaded on metallic structures of various sizes are switched between operating states to modify the amplitude codes at each frequency channel. The suggested MFAP metasurface's validity is confirmed by simulations and measurements from a dual-channel MFAP metasurface prototype.
与传统超表面不同,数字可编程超表面提供了一种更复杂的信息与物理协作方法,以简洁方式展示了对电磁(EM)波的多种实时控制。在这项工作中,我们提出了一种具有多个频率通道的多频幅度可编程(MFAP)超表面,以增强EM数据的呈现和操纵。利用这种超表面,反射幅度可以在高(数字“1”)和低(数字“0”)电平之间同时且独立地进行编码。幅度编码是唯一的,它同时展示了反射系数和辐射方向图,从而实现灵活的多功能频率相关EM操作。例如,MFAP超表面可用于设计创新的通信系统,通过在时域中跨通道单独传输各种EM信号。也可以通过混合这些频率通道来进行多位传输。通过在空间域引入复杂的编码模式,可以更精确地操纵EM功率。描述了一种能实现稳定单频幅度控制和多频1位幅度可编程特性的方形裂环元原子作为概念验证。加载在各种尺寸金属结构上的变容二极管在不同工作状态之间切换,以修改每个频率通道的幅度编码。双通道MFAP超表面原型的仿真和测量结果证实了所提出的MFAP超表面的有效性。