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基于等效电路的超材料吸波器的逆向设计

Reverse design of metamaterial absorbers based on an equivalent circuit.

作者信息

Wang Yang, Xuan Xuefei, Wu Shenbing, Zhu Lu, Zhu Jiabing, Shen Xiaobo, Zhang Zhipeng, Hu Changjun

机构信息

School of Electronic Engineering, Huainan Normal University, Huainan 232000, China.

School of Information Engineering, East China Jiaotong University, Nanchang 330013, China.

出版信息

Phys Chem Chem Phys. 2022 Aug 31;24(34):20390-20399. doi: 10.1039/d2cp01626e.

Abstract

We present a reverse design method useful for designing and analyzing metamaterial absorbers; we demonstrate its power by designing both a narrowband absorber and a wideband absorber. The method determines the structure of the absorber using an equivalent-circuit model. The narrowband metamaterial absorber structures were based on the equivalent-circuit model, and the narrowband metamaterial absorber designed using the method has an absorption fraction greater than 90% in a bandwidth of 500 nm centered at about 1450 nm. In order to extend the absorption bandwidth for the absorber, the narrowband absorber structure is adjusted based on the equivalent-circuit model, and the broadband metamaterial absorber structure is investigated. The numerical results show that the absorption bandwidth is substantially increased; the absorbance is greater than 90% for a band nearly reaching the limits of our experiment, from about 400 nm (near-ultraviolet) to about 2800 nm (deep infrared). The absorption spectrum of the wideband absorber is more sensitive to the angle of incident polarization due to the asymmetric structure, but the whole band shows polarization independence. For a large angle of 60° (TM polarization) oblique incidence, the average absorption of the broadband metamaterial absorber reaches 81%. The physical mechanism of the wideband high absorption is analyzed, which is mainly caused by Fabry-Perot resonance, surface plasmon resonance, local surface plasmon resonance, and the hybrid coupling among them. Our proposed design with high-broadband absorption has significant potential for thermoelectric and thermal emitters, solar thermal energy harvesting, and invisible device applications.

摘要

我们提出了一种用于设计和分析超材料吸收器的逆向设计方法;通过设计窄带吸收器和宽带吸收器来展示其功效。该方法使用等效电路模型确定吸收器的结构。窄带超材料吸收器结构基于等效电路模型,使用该方法设计的窄带超材料吸收器在以约1450nm为中心的500nm带宽内具有大于90%的吸收分数。为了扩展吸收器的吸收带宽,基于等效电路模型对窄带吸收器结构进行调整,并研究宽带超材料吸收器结构。数值结果表明吸收带宽显著增加;在从约400nm(近紫外)到约2800nm(深红外)几乎达到我们实验极限的波段内,吸收率大于90%。由于结构不对称,宽带吸收器的吸收光谱对入射偏振角更敏感,但整个波段显示出偏振无关性。对于60°(TM偏振)的大角度斜入射,宽带超材料吸收器的平均吸收率达到81%。分析了宽带高吸收的物理机制,其主要由法布里 - 珀罗共振、表面等离子体共振、局域表面等离子体共振以及它们之间的混合耦合引起。我们提出的具有高宽带吸收的设计在热电和热发射体、太阳能热能收集以及隐形器件应用方面具有巨大潜力。

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