Penketh Harry, Gallagher Cameron P, Mrnka Michal, Lawrence Christopher R, Phillips David B, Hooper Ian R, Hendry Euan
Department of Physics and Astronomy, University of Exeter, Stocker Road, Exeter, EX4 4QL, UK.
QinetiQ, Cody Technology Park, Ively Road, Farnborough, GU14 0LX, UK.
Nat Commun. 2025 May 17;16(1):4612. doi: 10.1038/s41467-025-59814-y.
Electromagnetic metasurfaces offer a route to exotic, customised material properties that are not found in nature. However, in practice these artificial materials often do not live up to the promise of their design, limited by a myriad of fabrication challenges and defects. Global responses, such as transmission or reflection spectra, cannot distinguish different defect types, while scanning point measurements are impractical for materials which can contain thousands of individual meta-atoms. In this work we introduce a diagnostic imaging approach applicable to metasurfaces across the microwave, millimeter wave and THz bands, which we demonstrate with a microwave single-pixel camera. Using a near-field photomodulator, our approach can discern the resonance frequencies of individual meta-atoms in a complex microwave metasurface over large areas (80 x 80 mm), with spatial resolution far below the microwave wavelength (λ) and with capabilities beyond λ/600 at 15 GHz. We demonstrate high throughput visualisation of inhomogeneous broadening across various samples, while resolving near-field distributions of deeply subwavelength meta-atoms, and gaining valuable insight into the operational limitations of real-world metasurfaces.
电磁超表面提供了一条通往自然界中不存在的奇异、定制化材料特性的途径。然而,在实际应用中,这些人工材料往往无法达到其设计预期,受到众多制造挑战和缺陷的限制。诸如透射或反射光谱等整体响应无法区分不同的缺陷类型,而对于可能包含数千个单个超原子的材料,扫描点测量并不实用。在这项工作中,我们引入了一种适用于微波、毫米波和太赫兹频段超表面的诊断成像方法,并通过微波单像素相机进行了演示。使用近场光调制器,我们的方法能够在大面积(80×80毫米)上分辨复杂微波超表面中单个超原子的共振频率,空间分辨率远低于微波波长(λ),在15吉赫兹时分辨率超过λ/600。我们展示了对各种样品中非均匀展宽的高通量可视化,同时解析了深亚波长超原子的近场分布,并深入了解了实际超表面的运行局限性。