Baghdasaryan Zhirayr, Babajanyan Arsen, Friedman Barry, Lee Kiejin
Department of Physics, Sogang University, Seoul, 121-742, Korea.
Institute of Physics, Yerevan State University, 0025, Yerevan, Armenia.
Sci Rep. 2023 Oct 27;13(1):18457. doi: 10.1038/s41598-023-45665-4.
A new practical imaging technique was presented for metamaterial characterization and investigation by visualizations of the magnetic microwave near-field (H-MWNF) distributions on a metamaterial's surface using the method of thermo-elastic optical indicator microscopy (TEOIM). ITO-based transparent and ceramic-based opaque metamaterial structures were designed for magnetic near-field visualization. Depending on the incident microwave field polarization, the TEOIM system allows the characterization of the metamaterial properties and microwave interaction behavior. The working principle of the periodic structures was investigated through numerical simulations, and the obtained results exhibited strong agreement when compared with experimental observations. Moreover, the visualization of the H-MWNF revealed the potential to characterize and evaluate the absorption and transmission properties effectively.
提出了一种新的实用成像技术,用于超材料表征和研究,该技术通过热弹性光学指示器显微镜(TEOIM)方法可视化超材料表面的磁微波近场(H-MWNF)分布。基于氧化铟锡(ITO)的透明和基于陶瓷的不透明超材料结构被设计用于磁近场可视化。根据入射微波场的极化情况,TEOIM系统能够表征超材料的特性和微波相互作用行为。通过数值模拟研究了周期性结构的工作原理,所得结果与实验观测结果相比显示出高度一致性。此外,H-MWNF的可视化揭示了有效表征和评估吸收与传输特性的潜力。