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Highly tunable hybrid metamaterials employing split-ring resonators strongly coupled to graphene surface plasmons

机译:高度可调的混合超材料,采用与碳烯表面等离子体激元牢固耦合的开环谐振器

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摘要

Metamaterials and plasmonics are powerful tools for unconventional manipulation and harnessing of light. Metamaterials can be engineered to possess intriguing properties lacking in natural materials, such as negative refractive index. Plasmonics offers capabilities of confining light in subwavelength dimensions and enhancing light-matter interactions. Recently, the technological potential of graphene-based plasmonics has been recognized as the latter features large tunability, higher field-confinement and lower loss compared with metal-based plasmonics. Here, we introduce hybrid structures comprising graphene plasmonic resonators coupled to conventional split-ring resonators, thus demonstrating a type of highly tunable metamaterial, where the interaction between the two resonances reaches the strong-coupling regime. Such hybrid metamaterials are employed as high-speed THz modulators, exhibiting similar to 60% transmission modulation and operating speed in excess of 40 MHz. This device concept also provides a platform for exploring cavity-enhanced light-matter interactions and optical processes in graphene plasmonic structures for applications including sensing, photo-detection and nonlinear frequency generation.
机译:超材料和等离激元学是用于非常规操纵和利用光的强大工具。可以将超材料设计为具有天然材料所缺乏的有趣特性,例如负折射率。 Plasmonics提供了将光限制在亚波长范围内并增强光与物质相互作用的功能。近年来,石墨烯基等离激元的技术潜力已被公认,因为后者具有比金属基等离激元大的可调性,更高的场限和更低的损耗。在这里,我们介绍了混合结构,其中包括与常规裂环谐振器耦合的石墨烯等离子体谐振器,从而展示了一种高度可调的超材料,其中两个谐振之间的相互作用达到了强耦合状态。此类混合超材料被用作高速THz调制器,表现出类似于60%的传输调制和超过40 MHz的工作速度。该器件概念还提供了一个平台,用于探索石墨烯等离子体结构中的腔增强光-质相互作用和光学过程,以用于包括传感,光检测和非线性频率生成在内的应用。

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