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Nonlinear Analysis: The Intermodulated Differential Immittance Spectroscopy

机译:非线性分析:互调差分阻抗谱

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摘要

Intermodulation is used for the analysis of the nonlinear behavior of electrochemical and electronic systems. As a matter of fact, different than the passive elements, electrochemical systems have a highly nonlinear character, which can be used to obtain information on the reaction mechanism and structure of the double layer. The setup for measuring and analyzing the intermodulated sidebands is discussed in detail, using a commercial Schottky diode as the ideal system. A general intermodulated differential immitance spectroscopy technique was consequently defined as the analysis of the variation of the immittance elements as a function of the stimulus frequency, and its transfer function was called differential immittance spectrum. Through a simple model, it was possible to precisely calculate the flat band voltage and the doping level of the Schottky diode from a single differential immittance spectrum. The differential immitance spectra of a dummy cell containing passive elements demonstrated the resolution limits of the technique.
机译:互调用于分析电化学和电子系统的非线性行为。实际上,与被动元件不同,电化学系统具有高度非线性的特性,可用于获得有关双层的反应机理和结构的信息。使用商用肖特基二极管作为理想系统,详细讨论了测量和分析互调边带的设置。因此,将一种通用的互调差分阻抗谱技术定义为对作为激励频率函数的阻抗元素变化的分析,其传递函数称为差分阻抗谱。通过一个简单的模型,可以从单个差分导纳光谱精确计算出肖特基二极管的平带电压和掺杂水平。包含无源元件的虚拟电池的差分酰亚胺光谱证明了该技术的分辨率极限。

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