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Optical sensing characteristics of nanostructures supporting multiple localized surface plasmon resonances

机译:支持多个局部表面等离子体共振的纳米结构的光学传感特性

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Noble metal nanoparticles supporting localized surface plasmon resonances (LSPR) have been extensively investigated for label free detection of various biological and chemical interactions. When compared to traditional propagating surface plasmon based sensors, LSPR sensors offer extensive wavelength tunability, greater electric field enhancement and sensing in reduced volumes. However, these sensors also suffer from a major disadvantage - LSPR sensors remain highly susceptible to interference because they respond to both solution refractive index changes and non-specific binding as well as specific binding of the target analyte. These interactions can compromise the measurement of the target analyte in a complex unknown media and hence limit the applicability and impact of the sensor. Despite the extensive amount of work done in this field, there has been an absence of optical techniques that make these sensors immune to interfering effects. Recently, our group experimentally demonstrated a multi-mode LSPR sensor that exploits three resonances of a U-shaped gold nanostructure to differentiate the target interaction from bulk and surface interfering effects. In this paper, we provide a comprehensive description of the electric field profiles of the three resonances of the U-shaped nanostructure. We will also evaluate the sensitivities of the nanostructure to the various bulk and surface interactions using numerical simulations.
机译:支持局部表面等离子体激元共振(LSPR)的贵金属纳米颗粒已被广泛研究用于各种生物和化学相互作用的无标记检测。与传统的基于传播表面等离激元的传感器相比,LSPR传感器具有广泛的波长可调性,更强的电场增强能力和更小的体积感测。但是,这些传感器也有一个主要缺点-LSPR传感器仍然很容易受到干扰,因为它们既响应溶液折射率的变化,又响应目标分析物的非特异性结合以及特异性结合。这些相互作用会损害复杂未知介质中目标分析物的测量,因此会限制传感器的适用性和影响。尽管在该领域中进行了大量的工作,但仍缺乏使这些传感器不受干扰影响的光学技术。最近,我们的小组通过实验证明了一种多模式LSPR传感器,该传感器利用U形金纳米结构的三个共振来区分目标相互作用与体积和表面干扰效应。在本文中,我们对U形纳米结构的三个共振的电场分布进行了全面描述。我们还将使用数值模拟评估纳米结构对各种本体和表面相互作用的敏感性。

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