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A theoretical model for determination of optimum metal thickness in Kretschmann configuration based surface plasmon resonance biosensors

机译:确定基于Kretschmann构型的表面等离子体共振生物传感器中最佳金属厚度的理论模型

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摘要

Surface plasmon resonance (SPR) is one of the most exciting surface-sensitive methods for bio-molecular interaction analysis (BIA) currently available to researchers. It features surface-sensitive response, label-free detection, and real-time measurement capability. The most important characterizing parameter for an SPR biosensor is its sensitivity. A sensor with higher sensitivity is desired for detecting even minute changes in the sensing layer refractive index. However, sensitivity of SPR sensors based on Kretschmann configuration depends on some crucial parameters, thickness of the metal film being one of them. Thus, determination and choice of optimum metal thickness for the specific sensing conditions is pivotal for enhanced performance and reduction of false alarm occurrence. Hence, in this paper a comprehensive analytical model is developed for the optimization of metal thickness of an SPR bio-sensor. This theory provides the direct relationship between the performance characteristic of the sensor, minimum reflectance (Rmin) to the design parameter metal thickness. The proposed analytical model is verified using finite-difference time-domain simulations which match with the theoretical results with negligible error.
机译:表面等离子体共振(SPR)是目前研究人员可以使用的最激动人心的生物分子相互作用分析(BIA)表面敏感方法之一。它具有表面敏感响应,无标签检测和实时测量功能。 SPR生物传感器最重要的表征参数是其灵敏度。期望具有更高灵敏度的传感器以检测感测层折射率的甚至微小的变化。但是,基于Kretschmann配置的SPR传感器的灵敏度取决于一些关键参数,金属膜的厚度就是其中之一。因此,确定和选择针对特定感测条件的最佳金属厚度对于提高性能和减少错误警报的发生至关重要。因此,在本文中,开发了一种综合分析模型来优化SPR生物传感器的金属厚度。该理论提供了传感器的性能特性,最小反射率(Rmin)与设计参数金属厚度之间的直接关系。通过有限差分时域仿真验证了所提出的分析模型,该仿真模型与理论结果相符,误差可忽略不计。

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