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基于α-MoO超材料的可见光区域超窄带各向异性完美吸收体

Ultra-Narrowband Anisotropic Perfect Absorber Based on α-MoO Metamaterials in the Visible Light Region.

作者信息

Jin Gui, Zhou Tianle, Tang Bin

机构信息

Department of Electronic Information and Electronic Engineering, Xiangnan University, Chenzhou 423000, China.

School of Microelectronics and Control Engineering, Changzhou University, Changzhou 213163, China.

出版信息

Nanomaterials (Basel). 2022 Apr 17;12(8):1375. doi: 10.3390/nano12081375.

Abstract

Optically anisotropic materials show important advantages in constructing polarization-dependent optical devices. Very recently, a new type of two-dimensional van der Waals (vdW) material, known as α-phase molybdenum trioxide (α-MoO), has sparked considerable interest owing to its highly anisotropic characteristics. In this work, we theoretically present an anisotropic metamaterial absorber composed of α-MoO rings and dielectric layer stacking on a metallic mirror. The designed absorber can exhibit ultra-narrowband perfect absorption for polarizations along [100] and [001] crystalline directions in the visible light region. Plus, the influences of some geometric parameters on the optical absorption spectra are discussed. Meanwhile, the proposed ultra-narrowband anisotropic perfect absorber has an excellent angular tolerance for the case of oblique incidence. Interestingly, the single-band perfect absorption in our proposed metamaterials can be arbitrarily extended to multi-band perfect absorption by adjusting the thickness of dielectric layer. The physical mechanism can be explained by the interference theory in Fabry-Pérot cavity, which is consistent with the numerical simulation. Our research results have some potential applications in designs of anisotropic optical devices with tunable spectrum and selective polarization in the visible light region.

摘要

光学各向异性材料在构建偏振相关光学器件方面展现出重要优势。最近,一种新型二维范德华(vdW)材料,即α相三氧化钼(α-MoO),因其高度各向异性特性引发了相当大的关注。在这项工作中,我们从理论上提出了一种由α-MoO环和介质层堆叠在金属镜上构成的各向异性超材料吸收体。所设计的吸收体在可见光区域对沿[100]和[001]晶向的偏振可表现出超窄带完美吸收。此外,讨论了一些几何参数对光吸收光谱的影响。同时,所提出的超窄带各向异性完美吸收体在斜入射情况下具有出色的角度容忍度。有趣的是,通过调整介质层的厚度,我们所提出的超材料中的单带完美吸收可以任意扩展为多带完美吸收。其物理机制可以用法布里 - 珀罗腔中的干涉理论来解释,这与数值模拟结果一致。我们的研究成果在可见光区域具有可调谐光谱和选择性偏振的各向异性光学器件设计中具有一些潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d113/9025360/af0fb7f2574a/nanomaterials-12-01375-g001.jpg

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