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面内各向同性和各向异性二维材料中的表面等离激元诱导透明

Plasmonically induced transparency in in-plane isotropic and anisotropic 2D materials.

作者信息

Xia Shengxuan, Zhai Xiang, Wang Lingling, Wen Shuangchun

出版信息

Opt Express. 2020 Mar 16;28(6):7980-8002. doi: 10.1364/OE.389573.

Abstract

General two-dimensional (2D) material-based systems that achieve plasmonically induced transparency (PIT) are limited to isotropic graphene only through unidirectional bright-dark mode interaction. Moreover, it is challenging to extend these devices to anisotropic 2D films. In this study, we exploit surface plasmons excited at two crossed grating layers, which can be formed either by dielectric gratings or by the 2D sheet itself, to achieve dynamically tunable PIT in both isotropic and anisotropic 2D materials. Here, each grating simultaneously acts as both bright and dark modes. By taking isotropic graphene and anisotropic black phosphorus (BP) as proofs of concept, we reveal that this PIT can result from either unidirectional bright-dark or bidirectional bright-bright and bright-dark mode hybridized couplings when the incident light is parallelly/perpendicularly or obliquely polarized to the gratings, respectively. Identical grating parameters in isotropic (crossed lattice directions in anisotropic) layers produce polarization-independent single-window PIT, whereas different grating parameters (coincident lattice directions) yield polarization-sensitive double-window PIT. The proposed technique is examined by a two-particle model, showing excellent agreement between the theoretical and numerical results. This study provides insight into the physical mechanisms of PIT and advances the applicability and versatility of 2D material-based PIT devices.

摘要

基于二维(2D)材料实现等离子体诱导透明(PIT)的一般系统仅通过单向亮暗模式相互作用局限于各向同性的石墨烯。此外,将这些器件扩展到各向异性二维薄膜具有挑战性。在本研究中,我们利用在两个交叉光栅层激发的表面等离子体,这两个交叉光栅层可以由介质光栅或二维薄片本身形成,以在各向同性和各向异性二维材料中实现动态可调谐的PIT。在这里,每个光栅同时充当亮模式和暗模式。以各向同性的石墨烯和各向异性的黑磷(BP)作为概念验证,我们揭示,当入射光分别平行于/垂直于或倾斜于光栅偏振时,这种PIT可以由单向亮暗或双向亮-亮和亮-暗模式混合耦合产生。各向同性层(各向异性中的交叉晶格方向)中相同的光栅参数产生与偏振无关的单窗口PIT,而不同的光栅参数(重合晶格方向)产生偏振敏感的双窗口PIT。所提出的技术通过双粒子模型进行了检验,结果表明理论结果与数值结果高度吻合。本研究深入了解了PIT的物理机制,并提高了基于二维材料的PIT器件的适用性和多功能性。

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