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TM modes with compact confinement and long propagation length in graphene hyperbolic metamaterial cladded hybrid plasmonic waveguides

机译:具有紧凑型限制和石墨烯双层超材料包覆混合等力波导的紧凑型监控和长传播长度的TM模式

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This work reports a graphene hyperbolic metamaterial hybrid plasmonic waveguides (GHMMHPW), and unlike traditional hybrid plasmonic waveguide (HPW), the GHMMHPW consists of a plasmonic cladding constructed by graphene hyperbolic metamaterial. Thanks to the particular structural arrangement, EM field can be localized and significantly enhanced in the low-index dielectric layer with nano-thickness. Thus, a superior performance is achieved. Meanwhile, electromagnetic parameters of graphene are tunable, and the mode properties also depend on the structural parameters, so the mode area and propagation distance can be optimized by adjusting these parameters flexibly. TM mode is supported in the GHMHPW, and improved performance is obtained. This study provides a novel and valuable reference for design of graphene plasmonic waveguides and prepares for the further development of micro-nano optics and integrated optoelectronic devices.
机译:该工作报告了石墨烯双曲面超材料混合等级型波导(GHMMHPW),并且与传统的混合等离子体波导(HPW)不同,GHMMHPW由石墨烯双曲金超材料构成的等离子体包层组成。由于特定的结构布置,EM场可以在具有纳米厚度的低折射率介电层中局部化并且显着增强。因此,实现了卓越的性能。同时,可调谐石墨烯的电磁参数,模式特性也取决于结构参数,因此可以通过灵活地调整这些参数来优化模式区域和传播距离。 GHMHPW支持TM模式,并获得改进的性能。该研究为石墨烯等离子体波导的设计提供了一种新颖和有价值的参考,并为微纳光学和集成光电器件的进一步发展做好准备。

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