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基于液态金属的热可调高Q值超材料及其传感应用。

Thermally tunable high-Q metamaterial and sensing application based on liquid metals.

作者信息

Ma Liang, Chen Dexu, Zheng Wenxian, Li Jian, Wang Wenjiao, Liu Yifeng, Zhou Yuedan, Huang Yongjun, Wen Guangjun

出版信息

Opt Express. 2021 Feb 15;29(4):6069-6079. doi: 10.1364/OE.418024.

Abstract

Achieving a high Q-factor metamaterial unit for a precision sensing application is highly demanded in recent years, and most of the developed high-performance sensors based on the high-Q metamaterial units are due to the dielectric/magnetic property changes of the substrate/superstrate. In this paper, we propose a completely different sensing metamaterial unit configuration, with good sensing sensitivity and precision properties, based on the thermally tunable liquid metals. Specifically, a basic thermally tunable metamaterial unit, the mercury-inspired split ring resonator (SRR), is firstly presented to theoretically show the magnetic resonance and negative permeability frequency band shift properties under different background temperatures. Then, considering the radiation loss mechanism of the conventional SRR metamaterial unit and based on the physically reliable ability of liquid metals, the modified mercury-inspired Fano and toroidal resonators with a large frequency tuning range and high Q-factor are developed and discussed. The numerical demonstrations have shown that the designed Fano and toroidal resonators have much better sensing precision performances compared to the conventional SRR for the temperature sensing application. The experimental demonstrations have also been used to verify the proposed mercury-based toroidal resonators, and good agreements are achieved.

摘要

近年来,对于精密传感应用而言,实现具有高Q因子的超材料单元的需求十分迫切,并且大多数基于高Q超材料单元开发的高性能传感器都是由于基底/覆盖层的介电/磁性能变化所致。在本文中,我们基于热可调液态金属提出了一种完全不同的传感超材料单元结构,具有良好的传感灵敏度和精密性能。具体而言,首先提出了一种基本的热可调超材料单元,即受汞启发的裂环谐振器(SRR),以从理论上展示不同背景温度下的磁共振和负磁导率频带偏移特性。然后,考虑到传统SRR超材料单元的辐射损耗机制,并基于液态金属在物理上的可靠特性,开发并讨论了具有大频率调谐范围和高Q因子的改进型受汞启发的法诺谐振器和环形谐振器。数值演示表明,对于温度传感应用,所设计的法诺谐振器和环形谐振器相比传统SRR具有更好的传感精度性能。实验演示也已用于验证所提出的基于汞的环形谐振器,并且取得了良好的一致性。

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