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Subwavelength plasmonic waveguide structures based on slots in thin metal films

机译:基于金属薄膜中缝隙的亚波长等离子体波导结构

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We demonstrate the existence of a bound optical mode supported by an air slot in a thin metallic film deposited on a substrate, with slot dimensions much smaller than the wavelength. The modal size is almost completely dominated by the near field of the slot. Consequently, the size is very small compared with the wavelength, even when the dispersion relation of the mode approaches the light line of the surrounding media. In addition, the group velocity of this mode is close to the speed of light in the substrate, and its propagation length is tens of microns at the optical communication wavelength. We also investigate the performance of bends and power splitters in plasmonic slot waveguides. We show that, even though the waveguides are lossy, bends and splitters with no additional loss can be designed over a wavelength range that extends from DC to near-infrared, when the bend and splitter dimensions are much smaller than the propagation length of the optical mode. We account for this effect with an effective characteristic impedance model based upon the real dispersion relation of the plasmonic waveguide structures.
机译:我们证明了由沉积在基板上的金属薄膜中的气隙所支持的束缚光学模式的存在,其狭缝尺寸远小于波长。模态大小几乎完全由插槽的近场控制。因此,即使当模式的色散关系接近周围介质的光线时,其尺寸与波长相比也非常小。另外,该模式的群速度接近基板中的光速,并且其在光通信波长下的传播长度为数十微米。我们还研究了等离子缝隙波导中的弯曲和功率分配器的性能。我们表明,即使波导是有损耗的,当弯曲和分离器的尺寸远小于光学器件的传播长度时,也可以在从DC延伸到近红外的波长范围内设计没有附加损耗的弯曲和分离器。模式。我们基于等离激元波导结构的实际色散关系,通过有效的特征阻抗模型解决了这一问题。

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