Liao Xinye, Zeng Junxiang, Zhang Yunxiang, He Xin, Yang Junbo
Undergraduate School, National University of Defense Technology, Changsha 410073, China.
Department of Physics, National University of Defense Technology, Changsha 410073, China.
Nanomaterials (Basel). 2022 Aug 11;12(16):2751. doi: 10.3390/nano12162751.
We numerically investigated a dual-band metamaterial absorber based on the combination of plasmonic resonance and Fabry-Pérot (FP) resonance, which can achieve near-unity absorption for guided lasers. The absorber is constructed by a three-layer metal-insulator-metal (MIM) periodic configuration. In each unit cell, there is a gold-silicon cross on a thin silicon layer and a bottom nickel film. Numerical results show that, at normal incidence, the structure strongly absorbs light at wavelengths of 1.064 μm and 10.6 μm, with absorption rates higher than 94%. It is revealed that the two absorption peaks result from FP resonance in the thin silicon layer and plasmonic resonance in the cross, respectively. In addition, the absorber is polarization insensitive and is tolerant to the incident angle. The proposed combination of different resonances has the advantage of easily producing double absorption peaks with very large wavelength differences, and provides a new approach to the design of metamaterial absorbers.
我们对一种基于等离子体共振和法布里 - 珀罗(FP)共振相结合的双频超材料吸收体进行了数值研究,该吸收体可实现对导波激光的近全吸收。吸收体由三层金属 - 绝缘体 - 金属(MIM)周期性结构构成。在每个单元胞中,薄硅层上有一个金 - 硅十字以及底部的镍膜。数值结果表明,在正入射时,该结构在波长1.064μm和10.6μm处强烈吸收光,吸收率高于94%。结果表明,这两个吸收峰分别源于薄硅层中的FP共振和十字结构中的等离子体共振。此外,该吸收体对偏振不敏感且对入射角具有耐受性。所提出的不同共振的组合具有易于产生波长差异非常大的双吸收峰的优点,并为超材料吸收体的设计提供了一种新方法。