Zhu Ruichao, Wang Jiafu, Ding Chang, Han Yajuan, Jia Yuxiang, Sui Sai, Qiu Tianshuo, Chu Zuntian, Chen Hongya, Wang Jun, Feng Bo, Qu Shaobo
Shaanxi Key Laboratory of Artificially-Structured Functional Materials and Devices, Air Force Engineering University, Xi'an, Shaanxi 710051, China.
Nanophotonics. 2023 Mar 2;12(7):1337-1345. doi: 10.1515/nanoph-2023-0050. eCollection 2023 Apr.
The continuous increase in communication capacity is accompanied by an increase in transmission frequency, which creates new demands on the transmission efficiency in modern. Signal relay transmission can increase the transmission distance, however, conventional repeaters relay the signal in a specified direction, which is difficult to accommodate communication when a receiving device suddenly appears around the repeater. In this work, we propose a new signal transmission repeater, which is implemented by an adaptively reconfigurable multi-beam reflective metasurface based on multispectral detection. The reconfigurable metasurface with varactor diodes is designed and the mapping of phase profiles to voltages is established by polynomial fitting method. Visual, laser, infrared and ultrasonic detectors are used to detect targets in different scenarios. Thus, the detection information is fed back to the reconfigurable metasurface for adaptively multi-beam switching. As verification, the adaptive metasurface repeater was fabricated and measured to verify our design. All the results exhibit consistency with theoretical design. Importantly, this work paves a new way to intelligent metasurfaces and may find applications in intelligent communications, smart home, etc.
通信容量的不断增加伴随着传输频率的提高,这对现代传输效率提出了新的要求。信号中继传输可以增加传输距离,然而,传统中继器沿指定方向中继信号,当接收设备突然出现在中继器周围时,难以适应通信需求。在这项工作中,我们提出了一种新型信号传输中继器,它由基于多光谱检测的自适应可重构多波束反射超表面实现。设计了带有变容二极管的可重构超表面,并通过多项式拟合方法建立了相位分布与电压的映射关系。使用视觉、激光、红外和超声波探测器在不同场景下检测目标。因此,检测信息反馈到可重构超表面以进行自适应多波束切换。作为验证,制作并测量了自适应超表面中继器以验证我们的设计。所有结果与理论设计一致。重要的是,这项工作为智能超表面开辟了一条新途径,并可能在智能通信、智能家居等领域找到应用。