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Influence of sintering temperature on the physical, electrochemical and sensing properties of alpha-Fe2O3-SnO2 nanocomposite sensing electrode for a mixed-potential type NOx sensor

机译:烧结温度对混合电位式NOx传感器的α-Fe2O3-SnO2纳米复合电极物理,电化学和感测性能的影响

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The Influence of sintering temperature on the physical, electrochemical and sensing properties of alpha-Fe2O3-SnO2 nanocomposite sensing electrode for a mixed-potential type NOx sensor is investigated. The alpha-Fe2O3-SnO2 nanocomposite was synthesized by a solution combustion route and sintered at temperatures 900, 1000, 1100 and 1200 degrees C to form the sensing electrodes of a stabilized-zirconia based mixed-potential type NOx sensor. The influence of sintering temperatures on the physical properties was characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM) and N-2 adsorption-desorption isotherm measurements. The gas sensing measurements were conducted at an operating temperature of 650 degrees C. A systematic increase in the response/recovery times was observed with an increase in the sintering temperature from 900 to 1200 degrees C. An optimum microstructure with a low surface area and large pore size leading to high electrochemical reactions at the interface and low heterogenous gas-phase decomposition of NO2 resulted in the maximum response magnitude (Delta V) and sensitivity for the electrode sintered at 1000 degrees C. Furthermore, the effect of sintering temperature on the electrochemical activity of the sensing electrode and its co-relation with the sensing properties was studied by dc polarization curve measurement. Moreover, the microstructure, sensing response, sensitivity, dynamics and O-2 conc. dependence of the presented mixed-potential type NOx sensor is critically dependent upon the sintering temperature of the sensing electrodes.
机译:研究了烧结温度对混合电位型NOx传感器的α-Fe2O3-SnO2纳米复合电极的物理,电化学和感测性能的影响。通过溶液燃烧途径合成α-Fe 2 O 3-SnO2纳米复合材料,并在温度900,1000,1100和1200摄氏度下烧结,形成稳定氧化锆的混合电位式NOx传感器的感测电极。通过X射线衍射(XRD),扫描电子显微镜(SEM)和N-2吸附 - 解吸等温测量,表征烧结温度对物理性质对物理性质的影响。在650℃的工作温度下进行气体感测测量。观察到响应/恢复时间的系统增加,随着900至1200℃的烧结温度的增加。具有低表面积和大的最佳微观结构孔径导致在界面处的高电化学反应和NO2的低异质气相分解导致最大响应幅度(Delta V)和在1000℃下烧结电极的灵敏度。此外,烧结温度对电化学的影响通过DC偏振曲线测量研究了感测电极的活性及其与感测性能的共同关系。此外,微观结构,感测响应,灵敏度,动力学和O-2浓度。所提出的混合电位型NOx传感器的依赖性尺寸依赖于感测电极的烧结温度。

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