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Multi-Layer Reflectivity Calculation Based Meta-Modeling of the Phase Mapping Function for Highly Reproducible Surface Plasmon Resonance Biosensing

机译:基于多层反射率计算的高再可再现表面等离子体共振生物传感功能的相位映射函数的元建模

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摘要

Phase-sensitive surface plasmon resonance biosensors are known for their high sensitivity. One of the technology bottle-necks of such sensors is that the phase sensorgram, when measured at fixed angle set-up, can lead to low reproducibility as the signal conveys multiple data. Leveraging the sensitivity, while securing satisfying reproducibility, is therefore is an underdiscussed key issue. One potential solution is to map the phase sensorgram into refractive index unit by the use of sensor calibration data, via a simple non-linear fit. However, basic fitting functions poorly portray the asymmetric phase curve. On the other hand, multi-layer reflectivity calculation based on the Fresnel coefficient can be employed for a precise mapping function. This numerical approach however lacks the explicit mathematical formulation to be used in an optimization process. To this end, we aim to provide a first methodology for the issue, where mapping functions are constructed from Bayesian optimized multi-layer model of the experimental data. The challenge of using multi-layer model as optimization trial function is addressed by meta-modeling via segmented polynomial approximation. A visualization approach is proposed for assessment of the goodness-of-the-fit on the optimized model. Using metastatic cancer exosome sensing, we demonstrate how the present work paves the way toward better plasmonic sensors.
机译:相敏表面等离子体共振生物传感器以其高灵敏度已知。这种传感器的技术瓶颈之一是,当信号传送多个数据时,相位传感器可以导致低再现性。因此,利用灵敏度,同时确保满足再现性,因此是一个欠额的关键问题。一个潜在的解决方案是通过使用简单的非线性配合使用传感器校准数据将相位传感器映射到折射率单元中。然而,基本拟合功能描绘了不对称相曲线。另一方面,基于菲涅耳系数的多层反射率计算可以用于精确的映射函数。然而,这种数值方法缺乏在优化过程中使用的显式数学制定。为此,我们的目标是为该问题提供第一种方法,其中映射函数由贝叶斯的优化多层模型构成实验数据。使用多层模型作为优化试验函数的挑战是通过分段多项式近似的元建模寻址。提出了一种可视化方法,用于评估优化模型的拟合的良好。使用转移性癌症外来感测,我们展示了现在的工作如何对更好的等离子体传感器铺平道路。

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