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A General Description of the Performance of Surface Plasmon Sensors Using a Transmission Line Resonant Circuit Model

机译:使用传输线谐振电路模型的表面等离激元传感器性能的一般描述

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We analyze the response of surface plasmon (SP) sensors using a transmission line model. We illustrate this analysis with particular reference to a layered structure in which plasmon hybridization occurs. By applying the appropriate resonant condition to the system, we derive a circuit model which predicts the responsivity of different modes. This gives new physical insight into the sensing process. We discuss how the change in the sample region may be modeled as a change in the reactance in the equivalent circuit and from this, it follows that a single parameter can determine the change in resonance position with reactance. This approach is used to predict the response of a generic sensor to binding of an analyte and the bulk change of refractive index. This parameter arises naturally from the circuit representation in a way not readily accessible with the transfer matrix approach. The parameters can be expressed in terms of the Q of a resonant circuit and confirms the intuition that a high Q is associated with poor responsivity, however, we demonstrate that there is another circuit parameter, the resistance at resonance, that can mitigate this effect, providing a route for optimization of the sensor properties.
机译:我们使用传输线模型分析表面等离子体激元(SP)传感器的响应。我们举例说明了这种分析,其中特别提到了发生等离激元杂交的分层结构。通过将适当的谐振条件应用于系统,我们得出了一个电路模型,该电路模型可以预测不同模式的响应度。这为传感过程提供了新的物理见解。我们讨论了如何将采样区域的变化建模为等效电路中电抗的变化,并由此得出一个参数可以确定电抗的谐振位置变化的结论。该方法用于预测通用传感器对分析物结合和折射率的整体变化的响应。该参数自然而然地由电路表示得出,其传递矩阵方法不易获得。这些参数可以用谐振电路的Q来表示,并证实了直觉,即高Q与较差的响应性有关,但是,我们证明了还有另一个电路参数,即谐振电阻,可以减轻这种影响,提供优化传感器属性的途径。

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