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用于小像素红外探测器的具有强耦合效应的表面等离激元超材料吸收器。

Plasmonic metamaterial absorbers with strong coupling effects for small pixel infrared detectors.

作者信息

Li Junyu, Li Jinzhao, Zhou Haoran, Zhang Guangzu, Liu Huan, Wang Shaowei, Yi Fei

出版信息

Opt Express. 2021 Jul 19;29(15):22907-22921. doi: 10.1364/OE.430156.

Abstract

Here we report a metal-insulator-metal (MIM) based infrared plasmonic metamaterial absorber consisting of deep subwavelength meander line nanoantennas. High absorption composed of two-hybrid modes from 11 μm to 14 μm is experimentally demonstrated with a pixel pitch of 1.47 μm corresponding to a compression ratio of 8.57. The physical mechanisms responsible for novelty spectral absorption, including the strong coupling between the plasmon resonances and the phonon vibrations, material loss from the dielectric spacer, localized surface plasmon resonance (LSPR), and Berreman mode excited by oblique incidence, have been systematically analyzed by finite-difference time-domain (FDTD) method, Fabry-Perot resonance model and two-coupled damped oscillator model. At oblique incidence, a spectral splitting related to the strong coupling between LSPR mode and Berreman mode is also observed. The distribution of local electromagnetic fields and ohmic loss are numerically investigated. Moreover, we evaluate the absorption performances with finite-sized arrays. We also show that the absorber can maintain its absorption with a 2 × 2 nanoantenna array. Such a miniaturized absorber can adapt to infrared focal plane arrays with a pixel size smaller than 5 μm, and thermal analysis is also performed. Our approach provides an effective way to minimize the antenna footprint without undermining the absorber performances, paving the way towards its integration with small pixels of infrared focal plane arrays for enhanced performances and expanded functionalities.

摘要

在此,我们报道了一种基于金属-绝缘体-金属(MIM)的红外等离子体超材料吸收器,它由深亚波长曲折线纳米天线组成。实验证明,该吸收器在11μm至14μm范围内由两种混合模式构成的高吸收率,其像素间距为1.47μm,对应压缩比为8.57。通过时域有限差分(FDTD)方法、法布里-珀罗共振模型和双耦合阻尼振荡器模型,系统分析了导致新颖光谱吸收的物理机制,包括等离子体共振与声子振动之间的强耦合、介质间隔层的材料损耗、局域表面等离子体共振(LSPR)以及斜入射激发的贝里曼模式。在斜入射时,还观察到与LSPR模式和贝里曼模式之间的强耦合相关的光谱分裂。对局部电磁场分布和欧姆损耗进行了数值研究。此外,我们评估了有限尺寸阵列的吸收性能。我们还表明,该吸收器在2×2纳米天线阵列下仍能保持其吸收性能。这种小型化吸收器能够适应像素尺寸小于5μm的红外焦平面阵列,并且还进行了热分析。我们的方法提供了一种在不损害吸收器性能的情况下最小化天线占用面积的有效途径,为其与红外焦平面阵列的小像素集成以提高性能和扩展功能铺平了道路。

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