Hwang Jieun, Hong Sungcheol
Department of Physics, Yonsei University, Seoul 03722, Republic of Korea.
Department of Electronic & Electrical Convergence Engineering, Hongik University, Sejong 30016, Republic of Korea.
Micromachines (Basel). 2025 Jun 12;16(6):702. doi: 10.3390/mi16060702.
This paper presents a simulation-based investigation of passive frequency tunability in frequency-selective surfaces (FSSs) enabled by Moiré pattern interference. By overlapping two identical hexagonal FSS layers and introducing rotational misalignment between them, we demonstrate that the resulting Moiré patterns induce significant shifts in the resonance frequency without any external bias or active components. Using full-wave simulations in HFSS, we show that rotating the second layer from 0° to 30° can shift the resonant frequency from 4.4 GHz down to 1.2 GHz. This tunable behavior emerges solely from geometrical manipulation, offering a low-complexity alternative to active tuning methods that rely on varactors or micro-electromechanical systems (MEMSs). We discuss the theoretical basis for this tuning mechanism based on effective periodicity modulation via rotational interference and highlight potential applications in passive reconfigurable filters and refractive index sensors. The proposed approach provides a promising route for implementing tunable electromagnetic structures without compromising simplicity, power efficiency, or integration compatibility.
本文介绍了一项基于模拟的研究,该研究探讨了由莫尔条纹干涉实现的频率选择表面(FSS)中的无源频率可调性。通过重叠两个相同的六边形FSS层并在它们之间引入旋转错位,我们证明了由此产生的莫尔条纹在没有任何外部偏置或有源组件的情况下会引起共振频率的显著偏移。使用HFSS中的全波模拟,我们表明将第二层从0°旋转到30°可以将共振频率从4.4 GHz降低到1.2 GHz。这种可调行为仅源于几何操作,为依赖变容二极管或微机电系统(MEMS)的有源调谐方法提供了一种低复杂度的替代方案。我们基于通过旋转干涉的有效周期性调制讨论了这种调谐机制的理论基础,并强调了其在无源可重构滤波器和折射率传感器中的潜在应用。所提出的方法为实现可调谐电磁结构提供了一条有前景的途径,而不会损害其简单性、功率效率或集成兼容性。