Wang Xin, Han Jia Qi, Li Guan Xuan, Xia De Xiao, Chang Ming Yang, Ma Xiang Jin, Xue Hao, Xu Peng, Li Rui Jie, Zhang Kun Yi, Liu Hai Xia, Li Long, Cui Tie Jun
Key Laboratory of High-Speed Circuit Design and EMC of Ministry of Education, School of Electronic Engineering, Xidian University, Xi'an, 710071, China.
Institute of Electromagnetic Space and the State Key Laboratory of Millimeter Waves, Southeast University, Nanjing, 210096, China.
Nat Commun. 2023 Sep 26;14(1):6002. doi: 10.1038/s41467-023-41763-z.
Programmable metasurfaces present significant capabilities in manipulating electromagnetic waves, making them a promising candidate for simultaneous wireless information and power transfer (SWIPT), which has the potential to enable sustainable wireless communication in complex electromagnetic environments. However, challenges remain in terms of maximum power transmission distance and stable phase manipulation with high-power scattered waves. Additionally, waveform limitations restrict average scattered power and rectifier conversion efficiency, affecting data transmission rates and energy transmission distance. Here we show an amplifying programmable metasurface (APM) and a joint modulation method to address these challenges. The APM mitigates the peak-to-average power ratio and improves maximum power, phase response stability, average output power, and rectifier conversion efficiency. Through experimental validation, we demonstrate the feasibility of the SWIPT system, showcasing simultaneous LED array powering and movie video transmission. This innovative SWIPT system holds promise for diverse applications, including 6 G wireless communications, IoT, implanted devices, and cognitive radio networks.
可编程超表面在操纵电磁波方面具有显著能力,使其成为同时进行无线信息与功率传输(SWIPT)的有前途的候选者,这有可能在复杂电磁环境中实现可持续的无线通信。然而,在最大功率传输距离以及对高功率散射波进行稳定相位操纵方面仍然存在挑战。此外,波形限制会限制平均散射功率和整流器转换效率,影响数据传输速率和能量传输距离。在此,我们展示了一种放大可编程超表面(APM)和一种联合调制方法来应对这些挑战。该APM减轻了峰均功率比,提高了最大功率、相位响应稳定性、平均输出功率和整流器转换效率。通过实验验证,我们证明了SWIPT系统的可行性,展示了同时为LED阵列供电和传输电影视频。这种创新的SWIPT系统在包括6G无线通信、物联网、植入式设备和认知无线电网络等各种应用中具有前景。