Wang Hai Peng, Li Yun Bo, Wang Shi Yu, Shen Jia Lin, Li He, Jin Shi, Cui Tie Jun
State Key Laboratory of Millimeter Waves, Southeast University, Nanjing, 210096, China.
National Mobile Communications Research Laboratory, Southeast University, Nanjing, 210096, China.
Adv Sci (Weinh). 2021 Sep;8(18):e2101212. doi: 10.1002/advs.202101212. Epub 2021 Jul 15.
In the past decades, metasurfaces have opened up a promising venue for manipulating lights and electromagnetic (EM) waves. In the field of nonlinearity, second-harmonic generation (SHG) is a research focus due to its diverse applications. There have been many researches for realizing SHG in optical regime using nonlinear characteristics of optical materials, but its efficiency is low. In microwave frequencies, SHGs are basically studied in the guided-wave systems. Here, high-efficiency SHGs of spatial waves are presented in the microwave frequency using nonlinear metasurface loaded with active chips at the subwavelength scale. The nonlinear meta-atom is composed of receiving antenna, transmitting antenna, and active circuit of frequency multiplier, which can realize strongly nonlinear response and link the EM signals from the receiving to transmitting antennas. Correspondingly, to achieve the function of spatial-wave frequency multiplication, the working frequency of the transmitting antenna in the meta-atom should be twice as that of the receiving antenna, and hence the active chip is well matched to obtain the signal transforming with high efficiency. Good performance of the spatial-wave frequency multiplication is demonstrated in the proof-of-concept experiments with the best transform efficiency of 85.11% under normal incidence, validating the proposed method.
在过去几十年中,超表面为操控光和电磁波开辟了一个充满前景的途径。在非线性领域,二次谐波产生(SHG)因其多样的应用而成为研究热点。利用光学材料的非线性特性在光学领域实现SHG已有诸多研究,但其效率较低。在微波频率下,SHG基本是在导波系统中进行研究。在此,利用加载亚波长尺度有源芯片的非线性超表面,在微波频率下实现了空间波的高效SHG。非线性超原子由接收天线、发射天线和倍频有源电路组成,能实现强非线性响应并将电磁信号从接收天线连接到发射天线。相应地,为实现空间波倍频功能,超原子中发射天线的工作频率应为接收天线的两倍,从而使有源芯片良好匹配以高效获得信号变换。在概念验证实验中展示了空间波倍频的良好性能,在正入射下最佳变换效率达85.11%,验证了所提方法。