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Evaluation of Nanoplasmonic Optical Fiber Sensors Based on D-Type and Suspended Core Fibers with Metallic Nanowires

机译:基于D型和金属纳米线悬浮芯纤维的纳米等离子体光纤传感器的评估

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The introduction of metallic nanostructures in optical fibers has revolutionized the field of plasmonic sensors since they produce sharper and fine-tuned resonances resulting in higher sensitivities and resolutions. This article evaluates the performance of three different plasmonic optical fiber sensors based on D-type and suspended core fibers with metallic nanowires. It addresses how their different materials, geometry of the components, and their relative position can influence the coupling between the localized plasmonic modes and the guided optical mode. It also evaluates how that affects the spatial distributions of optical power of the different modes and consequently their overlap and coupling, which ultimately impacts the sensor performance. In this work, we use numerical simulations based on finite element methods to validate the importance of tailoring the features of the guided optical mode to promote an enhanced coupling with the localized modes. The results in terms of sensitivity and resolution demonstrate the advantages of using suspended core fibers with metallic nanowires.
机译:光纤中金属纳米结构的引入彻底改变了等离子体传感器的领域,因为它们产生更清晰,更精细的共振,从而带来更高的灵敏度和分辨率。本文评估了三种不同的基于D型和带有金属纳米线的悬浮纤芯光纤的等离激元光纤传感器的性能。它解决了它们不同的材料,部件的几何形状以及它们的相对位置如何影响局部等离激元模式和引导光学模式之间的耦合的问题。它还评估了它如何影响不同模式的光功率的空间分布,进而影响它们的重叠和耦合,最终影响传感器性能。在这项工作中,我们使用基于有限元方法的数值模拟来验证调整引导光学模式特征以促进与局部模式增强耦合的重要性。灵敏度和分辨率方面的结果证明了将悬浮芯纤维与金属纳米线一起使用的优势。

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