Zhou Fangkun, Fu Yufeng, Tan Ruiyang, Zhou Jintang, Chen Ping
Opt Express. 2021 Oct 11;29(21):34735-34747. doi: 10.1364/OE.439541.
Electromagnetic (EM) wave absorber with broad and robust absorption performance over wide incident angle range is persistently desired in specific applications. In this work, we propose and demonstrate a broadband and wide-angle metamaterial absorber (MA) based on a hybrid of stereo spoof surface plasmonic polariton (SSPP) structure and planar resistive metasurface. At first, we design a broadband SSPP absorber by adjusting the dispersion and loss of the artificial plasmonic structure (PS) simultaneously. Furthermore, owing to utilize its spatial phase manipulation ability, we integrate a resistive metasurface on top of the PS to construct a modified circuit analog (CA) absorber with a dispersive metamaterial spacer. The absorption mechanism of the hybrid structure is analyzed theoretically. The results indicate that the hybrid MA is equipped with broad and robust absorption performance over a wide incident angle range due to the synergistic absorption of the PS and metasurface. Finally, a prototype of the hybrid MA is fabricated by silk-printing technic and its absorption performances are measured. The experimental results can verify the theoretic ones and indicate that proposed hybrid MA can achieve 90% absorptivity from 3.9 GHz to 10.6 GHz with thickness of 7.0 mm, which is only 106% times of the ultimate thickness corresponding to the absorption performance of MA. In general, the concept and design offer a distinct approach of utilizing SSPP to design absorbers with excellent performances from radio frequency to optic band, which are promising for extensive applications.
在特定应用中,一直需要在宽入射角范围内具有广泛且强大吸收性能的电磁波吸收器。在这项工作中,我们提出并展示了一种基于立体类表面等离激元极化激元(SSPP)结构与平面电阻性超表面混合的宽带宽角超材料吸收器(MA)。首先,我们通过同时调整人工等离子体结构(PS)的色散和损耗来设计宽带SSPP吸收器。此外,由于利用其空间相位操纵能力,我们在PS顶部集成了一个电阻性超表面,以构建具有色散超材料间隔层的改进型电路模拟(CA)吸收器。从理论上分析了这种混合结构的吸收机制。结果表明,由于PS和超表面的协同吸收,这种混合MA在宽入射角范围内具有广泛且强大的吸收性能。最后,通过丝网印刷技术制作了混合MA的原型,并测量了其吸收性能。实验结果可以验证理论结果,并表明所提出的混合MA在厚度为7.0 mm时,在3.9 GHz至10.6 GHz范围内可实现90%的吸收率,这仅为对应MA吸收性能的极限厚度的106%。总体而言,该概念和设计提供了一种利用SSPP设计从射频到光波段具有优异性能吸收器的独特方法,有望得到广泛应用。