Zhang Xin Ge, Sun Ya Lun, Zhu Bingcheng, Jiang Wei Xiang, Yu Qian, Tian Han Wei, Qiu Cheng-Wei, Zhang Zaichen, Cui Tie Jun
State Key Laboratory of Millimeter Waves, School of Information Science and Engineering, Southeast University, 210096, Nanjing, China.
National Mobile Communications Research Laboratory, School of Information Science and Engineering, Southeast University, 210096, Nanjing, China.
Light Sci Appl. 2022 May 6;11(1):126. doi: 10.1038/s41377-022-00817-5.
Signal conversion plays an important role in many applications such as communication, sensing, and imaging. Realizing signal conversion between optical and microwave frequencies is a crucial step to construct hybrid communication systems that combine both optical and microwave wireless technologies to achieve better features, which are highly desirable in the future wireless communications. However, such a signal conversion process typically requires a complicated relay to perform multiple operations, which will consume additional hardware/time/energy resources. Here, we report a light-to-microwave transmitter based on the time-varying and programmable metasurface integrated with a high-speed photoelectric detection circuit into a hybrid. Such a transmitter can convert a light intensity signal to two microwave binary frequency shift keying signals by using the dispersion characteristics of the metasurface to implement the frequency division multiplexing. To illustrate the metasurface-based transmitter, a hybrid wireless communication system that allows dual-channel data transmissions in a light-to-microwave link is demonstrated, and the experimental results show that two different videos can be transmitted and received simultaneously and independently. Our metasurface-enabled signal conversion solution may enrich the functionalities of metasurfaces, and could also stimulate new information-oriented applications.
信号转换在通信、传感和成像等许多应用中发挥着重要作用。实现光频与微波频率之间的信号转换是构建混合通信系统的关键一步,该系统结合了光无线技术和微波无线技术以实现更好的特性,这在未来无线通信中是非常可取的。然而,这样的信号转换过程通常需要一个复杂的中继器来执行多个操作,这将消耗额外的硬件/时间/能量资源。在此,我们报道了一种基于时变可编程超表面的光到微波发射器,该超表面与高速光电检测电路集成在一起形成一个混合体。这种发射器可以利用超表面的色散特性将光强度信号转换为两个微波二进制频移键控信号,以实现频分复用。为了说明基于超表面的发射器,展示了一种在光到微波链路中允许双通道数据传输的混合无线通信系统,实验结果表明两个不同的视频可以同时且独立地进行传输和接收。我们基于超表面的信号转换解决方案可能会丰富超表面的功能,也可能会激发新的面向信息的应用。