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A Simulation Study of an Optimized Impedance Spectroscopy Approach for Gas Sensors

机译:气体传感器优化阻抗谱方法的仿真研究

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This paper presents a simulation study of an optimized and computationally low-cost method for estimating the Electrical Impedance Spectra (EIS) of semiconductor gas sensors and in particular for Metal-Oxide (MOX) chemiresistive sensors. The approach is applied directly to the sensor without using a voltage divider and is based on a well-known signal processing principle: a Linear Time-Invariant (LTI) system’s Impulse Response (IR) is estimated by stimulating the system with a Maximum Length Sequence (MLS) and thus performing the circular cross-correlation between input and output signals. Finally, the system’s frequency response, i.e. the impedance spectrum, is obtained through the Fast Fourier Transform (FFT) of the estimated impulse response. The technique is demonstrated in simulation environment using a time-invariant passive network that simulates a MOX sensor. Simulation results and performance analysis are discussed showing design trade-offs.
机译:本文介绍了一种优化的计算低成本方法的仿真研究,该方法可用于估算半导体气体传感器,尤其是金属氧化物(MOX)化学阻性传感器的电阻抗谱(EIS)。该方法无需使用分压器即可直接应用于传感器,并且基于众所周知的信号处理原理:通过使用最大长度序列刺激系统来估计线性时不变(LTI)系统的脉冲响应(IR) (MLS),从而执行输入和输出信号之间的圆形互相关。最后,系统的频率响应(即阻抗谱)是通过估算的脉冲响应的快速傅立叶变换(FFT)获得的。该技术在仿真环境中使用模拟MOX传感器的时不变无源网络进行了演示。讨论了仿真结果和性能分析,显示了设计折衷方案。

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