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Reduction of Excitation Volume in Fluorescence Spectroscopy with Localized Surface Plasmon

机译:用局部表面等离子体荧光光谱法在荧光光谱中的减少

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By introducing a sub-wavelength square nanohole in a semitransparent thin silver film, the penetration depth and the propagation length of the evanescent field can be reduced remarkably, confining the excitation field to a very small region. The excitation volume in the proposed structure is reduced to only 1.8% of the analyte volume excited in the conventional fluorescence spectroscopy structure based on surface plasmon coupled emission (SPCE) technique. Additionally, the proposed structure does not require hemispherical glass substrate for the wavevector match, since normally incident light beam can excite the surface plasmon mode at the aperture walls, rendering the device size to micrometer scale. Moreover, for the optimized dimensions of the nanohole, the peak excitation field is found to be ~3.3 times stronger than the peak evanescent field obtainable in the conventional arrangements. With reduced device size, increased resolution and enhanced field strength, the proposed structure will find applications in chip array implementation of florescence microscopy, and variants of SPCE based single molecule detection (SMD).
机译:通过在半透明薄银膜中引入亚波长方形纳米孔,可以显着地减小渐变的场的穿透深度和传播长度,将激励场限制到非常小的区域。基于表面等离子体耦合发射(SPCE)技术,所提出的结构中的激发体积仅减少到在常规荧光光谱结构中激发的分析物体积的1.8%。另外,所提出的结构不需要用于波动匹配的波动玻璃基板,因为通常入射光束可以在孔壁上激发表面等离子体模式,使器件尺寸变为微米级。另外,对于纳米孔的优化尺寸,发现峰值激励场比传统布置中获得的峰值渐峰场强的峰值激励场更强。通过降低的装置尺寸,增加的分辨率和增强的场强,所提出的结构将在浮核阵列的浮动显微镜实现中找到应用,以及基于SPCE的单分子检测(SMD)的变体。

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