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首页> 外文期刊>Physical review, B >Transforming two-dimensional guided light using nonmagnetic metamaterial waveguides
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Transforming two-dimensional guided light using nonmagnetic metamaterial waveguides

机译:使用非磁性超材料波导来转换二维导光

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Almost a decade ago, transformation optics established a geometrical perspective to describe the interaction of light with structured matter, enhancing our understanding and control of light. However, despite their huge technological relevance in applications such as optical circuitry, optical detection, and actuation, guided electromagnetic waves along dielectric waveguides have not yet benefited from the flexibility and conceptual simplicity of transformation optics. Indeed, transformation optics inherently imposes metamaterials not only inside the waveguide's core but also in the surrounding substrate and cladding. Here we restore the two-dimensional nature of guided electromagnetic waves by introducing a thickness variation on an anisotropic dielectric core according to alternative two-dimensional equivalence relations. Our waveguides require metamaterials only inside the core with the additional advantage that the metamaterials need not be magnetic and, hence, our purely dielectric waveguides are low loss. We verify the versatility of our theory with full wave simulations of three crucial functionalities: beam bending, beam splitting, and lensing. Our method opens up the toolbox of transformation optics to a plethora of waveguide-based devices.
机译:大约十年前,变换光学建立了几何学的视角来描述光与结构化物质的相互作用,从而增强了我们对光的理解和控制。但是,尽管它们在光学电路,光学检测和激励等应用中具有巨大的技术意义,但沿着介电波导的电磁波仍未从转换光学的灵活性和概念简单性中受益。确实,转换光学器件不仅在波导的纤芯内部而且在周围的基板和包层中固有地施加了超材料。在这里,我们根据各向异性的二维等效关系,通过在各向异性介质芯上引入厚度变化,来恢复电磁波的二维特性。我们的波导仅在纤芯内部需要超材料,其附加优点是超材料不需要是磁性的,因此,我们的纯介电波导损耗低。我们通过对三个关键功能的全波仿真来验证我们理论的多功能性:光束弯曲,光束分离和透镜化。我们的方法为大量基于波导的设备打开了转换光学工具箱。

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