Sun Zhiwei, Liu Run, Cao Hailin, Gong Heling, Du Mingzhu, Li Shirun
Chongqing Key Laboratory of Space Information Network and Intelligent Information Fusion, Chongqing University, Chongqing 400044, China.
State Key Laboratory of Power Transmission Equipment and System Security and New Technology, Chongqing University, Chongqing 400044, China.
Sensors (Basel). 2020 Feb 28;20(5):1307. doi: 10.3390/s20051307.
Herein, we propose an approach for sensitivity improvement of dual-axis strain sensing using the property of a metasurface (MS) that the phase response shifts sharply with the MS deformation. A feasible approach for phase measurement is first demonstrated by calculating multi-polarized reception when the incident electromagnetic (EM) wave has anisotropic phase values. A flexible MS consisting of periodically arranged lantern-shaped elements is designed and fabricated for dual-axis strain sensing and evaluation based on the proposed method. The simulation and measurement results demonstrated a high sensitivity of the proposed MS for strain sensing in the microwave band. The method can be used potentially in both pressure and tensile sensing. Moreover, the operational frequency can be extended to the THz range and even to the optical band.
在此,我们提出一种利用超表面(MS)的特性来提高双轴应变传感灵敏度的方法,即超表面的相位响应会随着其变形而急剧变化。通过计算入射电磁波具有各向异性相位值时的多极化接收,首先证明了一种可行的相位测量方法。基于所提出的方法,设计并制作了一种由周期性排列的灯笼形元件组成的柔性超表面,用于双轴应变传感和评估。仿真和测量结果表明,所提出的超表面在微波频段对应变传感具有高灵敏度。该方法可能潜在地应用于压力和拉伸传感。此外,工作频率可以扩展到太赫兹范围,甚至到光学频段。