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Surface Plasmon Resonances in Oriented Silver Nanowire Coatings on Optical Fibers

机译:光纤上定向银纳米线涂层中的表面等离子体共振

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Silver nanowires 1—3 μm in length and diameters of 0.04—0.05 μm were synthesized by a polyol process and deposited on a single mode optical fiber with the Langmuir—Blodgett technique. For nanowire surface coverage of ~40% and partial orientation of their long axis obtained by controlling the deposition parameters, the optical properties of the nanowire coating become identical to those of a uniform metal coating obtained by sputtering or evaporation. Excitation of the nanowires by the polarized evanescent field of fiber cladding modes at near-infrared wavelengths near 1.5 μm results in surface plasmon-like resonances in the transmission spectrum of the optical fiber. The polarization-dependent loss (PDL) spectrum of the tilted fiber Bragg grating used to excite the cladding modes shows a pronounced characteristic dip indicative of a plasmon resonance for radially polarized light waves and complete shielding of light for azimuthally polarized light. The PDL dip shifts at a rate of 650 nm/(refractive index unit) when the surrounding refractive index is changed, a 10-fold increase compared to uncoated fiber gratings and similar to that of uniform metal coated gratings. The advantage of the nanowire approach is to provide a much increased contact surface area for biomolecular recognition-based immunosensing.
机译:通过多元醇工艺合成了长度为1-3μm,直径为0.04-0.05μm的银纳米线,并使用Langmuir-Blodgett技术将其沉积在单模光纤上。对于通过控制沉积参数获得的约40%的纳米线表面覆盖率和长轴的局部取向,纳米线涂层的光学性能变得与通过溅射或蒸发获得的均匀金属涂层的光学性能相同。在1.5μm附近的近红外波长处,光纤包层模式的偏振渐逝场对纳米线的激发导致了光纤传输光谱中类似表面等离子体激元的共振。用于激发包层模式的倾斜光纤布拉格光栅的偏振相关损耗(PDL)光谱显示出明显的特征倾角,表明径向偏振光波的等离子体激元共振,并且对于方位角偏振光完全屏蔽光。当周围的折射率发生变化时,PDL倾角以650 nm /(折射率单位)的速率移动,与未镀膜的光纤光栅相比增加了10倍,并且与均匀金属镀膜的光栅相似。纳米线方法的优点是为基于生物分子识别的免疫传感提供了大大增加的接触表面积。

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