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The microwave cavity perturbation technique for contact-free and in situ electrical conductivity measurements in catalysis and materials science

机译:微波腔微扰技术,用于催化和材料科学中的非接触式和原位电导率测量

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摘要

We have developed a noncontact method to probe the electrical conductivity and complex permittivity of single and polycrystalline samples in a flow-through reactor in the temperature range of 20-500 °C and in various gas atmospheres. The method is based on the microwave cavity perturbation technique and allows the simultaneous measurement of microwave conductivity, permittivity and of the catalytic performance of heterogeneous catalysts without any need for contacting the sample with electrodes. The sensitivity of the method towards changes in bulk properties was proven by the investigation of characteristic first-order phase transitions of the ionic conductor rubidium nitrate in the temperature range between 20 and 320 °C, and by studying the temperature dependence of the complex permittivity and conductivity of a niobium(v)-doped vanadium-phosphorous-oxide catalyst for the selective oxidation of n-butane to maleic anhydride. Simultaneously, the catalytic performance was probed by on line GC analysis of evolving product gases making the technique a real in situ method enabling the noninvasive investigation of electronic structure-function relationships.
机译:我们已经开发出一种非接触方法来探测流通型反应器中20-500°C的温度范围以及各种气体气氛中单晶和多晶样品的电导率和复介电常数。该方法基于微波腔扰动技术,并允许同时测量微波电导率,介电常数和非均相催化剂的催化性能,而无需使样品与电极接触。通过研究离子导体硝酸rub在20至320°C之间的温度范围内的特征性一阶相变,以及研究复介电常数和温度的温度依赖性,证明了该方法对整体性质变化的敏感性。铌(v)掺杂的钒-磷氧化物催化剂对正丁烷选择性氧化为马来酸酐的电导率同时,通过对不断演变的产物气体进行在线GC分析来探测催化性能,从而使该技术成为一种真正的原位方法,能够对电子结构-功能关系进行无创研究。

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