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A Polynomial-Exponent Model for Calibrating the Frequency Response of Photoluminescence-Based Sensors

机译:一种用于校准基于光致发光的传感器频率响应的多项式指数模型

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摘要

In this work, we propose a new model describing the relationship between the analyte concentration and the instrument response in photoluminescence sensors excited with modulated light sources. The concentration is modeled as a polynomial function of the analytical signal corrected with an exponent, and therefore the model is referred to as a polynomial-exponent (PE) model. The proposed approach is motivated by the limitations of the classical models for describing the frequency response of the luminescence sensors excited with a modulated light source, and can be considered as an extension of the Stern–Volmer model. We compare the calibration provided by the proposed PE-model with that provided by the classical Stern–Volmer, Lehrer, and Demas models. Compared with the classical models, for a similar complexity (i.e., with the same number of parameters to be fitted), the PE-model improves the trade-off between the accuracy and the complexity. The utility of the proposed model is supported with experiments involving two oxygen-sensitive photoluminescence sensors in instruments based on sinusoidally modulated light sources, using four different analytical signals (phase-shift, amplitude, and the corresponding lifetimes estimated from them).
机译:在这项工作中,我们提出了一种新模型,描述了用调制光源激发的光致发光传感器中的分析物浓度和仪器响应之间的关系。浓度被建模为用指数校正的分析信号的多项式函数,因此该模型被称为多项式指数(PE)模型。所提出的方法是通过用于描述用调制光源激发的发光传感器的频率响应的局限性的方法,并且可以被认为是船尾模型的延伸。我们比较所提出的PE-Model提供的校准,该模型与经典船尾华尔州,Lehrer和DEMAS模型提供的。与经典模型相比,对于类似的复杂性(即,使用相同数量的参数),PE模型可以改善准确性与复杂性之间的权衡。使用四个不同的分析信号(相移,幅度和它们的相应寿命,基于基于正弦调制光源的仪器中的两个氧敏感光致发光传感器的实验支持所提出的模型的实验。

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