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基于VO的太赫兹超材料吸收体特性的热调谐

Thermal tuning of terahertz metamaterial absorber properties based on VO.

作者信息

Zheng Zhipeng, Luo Yao, Yang Hua, Yi Zao, Zhang Jianguo, Song Qianjv, Yang Wenxing, Liu Chao, Wu Xianwen, Wu Pinghui

机构信息

Joint Laboratory for Extreme Conditions Matter Properties, Southwest University of Science and Technology, Mianyang 621010, China.

State Key Laboratory of Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou University of Technology, Lanzhou 730050, China.

出版信息

Phys Chem Chem Phys. 2022 Apr 13;24(15):8846-8853. doi: 10.1039/d2cp01070d.

Abstract

We present a novel, structurally simple, multifunctional broadband absorber. It consists of a patterned vanadium dioxide film and a metal plate spaced by a dielectric layer. Temperature control allows flexible adjustment of the absorption intensity from 0 to 0.999. The modulation mechanism of the absorber stems from the thermogenic phase change properties of the vanadium dioxide material. The absorber achieves total reflection properties in the terahertz band when the vanadium dioxide is in the insulated state. When the vanadium dioxide is in its metallic state, the absorber achieves near-perfect absorption in the ultra-broadband range of 3.7 THz-9.7 THz. Impedance matching theory and the analysis of electric field are also used to illustrate the mechanism of operation. Compared to previous reports, our structure utilizes just a single cell structure (3 layers only), and it is easy to process and manufacture. The absorption rate and operating bandwidth of the absorber are also optimised. In addition, the absorber is not only insensitive to polarization, but also very tolerant to the angle of incidence. Such a design would have great potential in wide-ranging applications, including photochemical energy harvesting, stealth devices, thermal emitters,

摘要

我们展示了一种新型的、结构简单的多功能宽带吸收器。它由一个图案化的二氧化钒薄膜和一个通过介电层隔开的金属板组成。温度控制可实现吸收强度从0到0.999的灵活调节。该吸收器的调制机制源于二氧化钒材料的热致相变特性。当二氧化钒处于绝缘状态时,吸收器在太赫兹频段实现全反射特性。当二氧化钒处于金属状态时,吸收器在3.7太赫兹至9.7太赫兹的超宽带范围内实现近乎完美的吸收。还利用阻抗匹配理论和电场分析来说明其工作机制。与先前的报道相比,我们的结构仅采用单一单元结构(仅三层),易于加工制造。该吸收器的吸收率和工作带宽也得到了优化。此外,该吸收器不仅对偏振不敏感,而且对入射角也具有很强的耐受性。这样的设计在包括光化学能量收集、隐身装置、热发射器等广泛的应用中具有巨大潜力。

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