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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Investigation of Ca substitution on the gas sensing potential of LaFeO3 nanoparticles towards low concentration SO2 gas
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Investigation of Ca substitution on the gas sensing potential of LaFeO3 nanoparticles towards low concentration SO2 gas

机译:Ca替代对LaFeO3纳米粒子对低浓度SO2气体的气敏电势的影响

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The present work investigates the superior ability of LaFeO3 (LaFeO) and La0.8Ca0.2FeO2.95 (LaCaFeO) nanoparticles to detect 3 ppm SO2 gas. The influence of calcium substitution on the sensing behaviour of LaFeO has been studied. High resolution TEM images show that the particle sizes of LaFeO and LaCaFeO are less than 100 nm and SEM images show the agglomeration of interconnected nanoparticles. Both LaFeO and LaCaFeO crystallize in the orthorhombic crystal system with the space group Pbnm. Rietveld analysis of neutron diffraction data showed that LaCaFeO has lattice oxygen vacancies. In addition, magnetic refinements on both the samples have been carried out. The presence of lattice oxygen vacancies in LaCaFeO is qualitatively supported by Raman and XPS measurements. Electrical characterization showed increased conductivity for the LaCaFeO sample, influencing their sensing performance significantly. The LaCaFeO nanoparticles exhibit higher sensitivity, faster response time, rapid recovery time and good recyclability for sensing 3 ppm SO2 gas. This enhanced sensing behaviour is attributed to the increased oxygen vacancies in the lattice as well as the surface. As a consequence, increased active sites are created in LaCaFeO, promoting redox reaction between the analyte and the sensing material. The results demonstrated that while LaFeO is a good gas sensor, p-type substitution by Ca2+ renders this material an improved resistivity based gas sensor to detect low concentration SO2.
机译:本工作研究了LaFeO3(LaFeO)和La0.8Ca0.2FeO2.95(LaCaFeO)纳米粒子检测3 ppm SO2气体的优越能力。研究了钙取代对LaFeO传感行为的影响。高分辨率TEM图像显示LaFeO和LaCaFeO的粒径小于100 nm,而SEM图像显示互连的纳米颗粒的团聚。 LaFeO和LaCaFeO均在正交晶体系统中以Pbnm空间群结晶。中子衍射数据的Rietveld分析表明,LaCaFeO具有晶格氧空位。另外,已经对两个样品进行了磁精炼。拉曼和XPS测量定性地支持了LaCaFeO中晶格氧空位的存在。电学表征显示LaCaFeO样品的电导率增加,从而显着影响其感测性能。 LaCaFeO纳米颗粒具有更高的灵敏度,更快的响应时间,更快的恢复时间以及对3 ppm SO2气体的良好可回收性。这种增强的感测行为归因于晶格以及表面中氧空位的增加。结果,在LaCaFeO中产生了更多的活性位,从而促进了分析物与传感材料之间的氧化还原反应。结果表明,虽然LaFeO是一种良好的气体传感器,但Ca2 +的p型替代使该材料成为一种改进的基于电阻率的气体传感器,可检测低浓度的SO2。

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