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Guided subwavelength optical mode with slow group velocity supported by a periodic plasmonic waveguide

机译:带有慢组速度的引导子波长光学模式由周期性等离子体波导支持的慢组速度

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We introduce a periodic plasmonic waveguiding structure which supports a guided subwavelength optical mode with slow group velocity at a tunable wavelength range and with a tunable slowdown factor. The structure consists of a metaldielectric-metal (MDM) waveguide side-coupled to a periodic array of MDM stub resonators. Both the MDM waveguide and MDM stub resonators have deep subwavelength widths. We show that such a structure supports a guided optical mode with slow group velocity. The wavelength range in which slow light propagation is achieved can be tuned by adjusting the MDM stub resonator length and the periodicity of the structure. We also show that the slowdown factor increases as the periodicity of the structure decreases, and that light can be slowed down by several orders of magnitude. We find that there is a tradeoff between the slowdown factor and the propagation length of the supported optical mode. In addition, for a given slowdown factor and operating wavelength, the propagation length of the optical mode in the periodic plasmonic waveguide is much larger than the propagation length of the mode supported by a conventional MDM waveguide, in which the slowdown factor can be tuned by adjusting the dielectric layer width. Finally, we show that light can be coupled efficiently from a conventional MDM waveguide to such a periodic plasmonic waveguide. Such slow-light plasmonic waveguides could be potentially used in nonlinear and sensing applications. We use a characteristic impedance model and transmission line theory to account for their behavior.
机译:我们引入支持具有慢的群速度的导亚波长光学模式在可调谐波长范围和一个带可调减速因子的周期性等离激元波导结构。该结构包括一个metaldielectric金属的(MDM)波导侧耦合至MDM存根谐振器的周期性阵列。无论是MDM波导和MDM存根谐振器具有深亚波长宽度。我们表明,这种结构支持具有慢的群速度的导光模。在其中缓慢光传播,实现的波长范围可通过调节MDM存根谐振器长度和结构的周期性进行调整。我们还表明,经济放缓因素随着结构的周期性下降,而光可以通过几个数量级放缓。我们发现,存在减速因子和所支持的光模的传播长度之间的折衷。此外,对于给定的减速因子和操作波长,在周期等离子体波导的光学模式的传播长度比通过常规MDM波导支持的模式,其中,所述减速率可通过被调谐的传播长度大得多调整电介质层的宽度。最后,我们表明,光可有效地从常规的MDM波导耦合到这样的周期性的等离子体波导。这样慢光等离子体波导可在非线性和感测应用中可能使用的。我们使用的特性阻抗模型和传输线理论来解释他们的行为。

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