石墨烯对等离子体超材料的红外探测

S. Ogawa, D. Fujisawa, M. Shimatani, K. Matsumoto
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引用次数: 6

摘要

石墨烯由单层碳原子组成,具有二维六边形晶格结构。近年来,由于其优异的光电性能和有趣的物理特性,它已成为人们越来越感兴趣的主题。石墨烯由于其快速响应和宽带性能被认为是一种很有前途的光电子器件材料。然而,石墨烯只吸收了2.3%的入射白光,这限制了基于它的光电探测器的性能。提高石墨烯的光学吸收的一个有前途的方法是使用等离子共振。从基础物理学和实际应用的角度来看,等离子体学领域一直受到相当大的关注,石墨烯等离子体学已经成为光电子学中最有趣的话题之一。在本研究中,我们研究了石墨烯在等离子体超材料吸收体(PMA)上的光学特性。PMA是基于金属-绝缘体-金属结构,其表面等离子体共振被诱导。采用化学气相沉积法合成了石墨烯,并将其转移到PMA上,比较了添加和不添加石墨烯时PMA在红外区的反射率。发现石墨烯层的存在导致仅在主等离子体共振波长处显著增强吸收。PMA诱导的局部等离子体共振增强了石墨烯的吸收,这归因于PMA与石墨烯的总吸收增强。在本研究中获得的结果有望导致石墨烯基红外探测器性能的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Graphene on plasmonic metamaterials for infrared detection
Graphene consists of a single layer of carbon atoms with a two-dimensional hexagonal lattice structure. Recently, it has been the subject of increasing interest due to its excellent optoelectronic properties and interesting physics. Graphene is considered to be a promising material for use in optoelectronic devices due to its fast response and broadband capabilities. However, graphene absorbs only 2.3% of incident white light, which limits the performance of photodetectors based on it. One promising approach to enhance the optical absorption of graphene is the use of plasmonic resonance. The field of plasmonics has been receiving considerable attention from the viewpoint of both fundamental physics and practical applications, and graphene plasmonics has become one of the most interesting topics in optoelectronics. In the present study, we investigated the optical properties of graphene on a plasmonic metamaterial absorber (PMA). The PMA was based on a metal-insulator-metal structure, in which surface plasmon resonance was induced. The graphene was synthesized by chemical vapor deposition and transferred onto the PMA, and the reflectance of the PMA in the infrared (IR) region, with and without graphene, was compared. The presence of the graphene layer was found to lead to significantly enhanced absorption only at the main plasmon resonance wavelength. The localized plasmonic resonance induced by the PMA enhanced the absorption of graphene, which was attributed to the enhancement of the total absorption of the PMA with graphene. The results obtained in the present study are expected to lead to improvements in the performance of graphene-based IR detectors.
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