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首页> 外文期刊>Journal of the European Ceramic Society >Multiscale modeling of the ionic conductivity of acceptor doped ceria
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Multiscale modeling of the ionic conductivity of acceptor doped ceria

机译:受体掺杂二氧化铈离子电导率的多尺度建模

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The ionic conductivity of acceptor doped ceria is strongly influenced by grain boundaries and interfaces, with most experiments showing a conductivity decrease in these regions. Classical models explain this observation by the formation of space charge layers, that are depleted of mobile ionic charge carriers. However, some experiments demonstrate an increase in ionic conductivity and recent models show that the space charge layers can also be enriched in mobile ionic species. Because of these discrepancies, it is still not certain whether nanocrystalline or thin film ceria can offer superior ionic conductivity or not. Recently, we have demonstrated by means of Monte Carlo simulations that the ionic conductivity in space charge layers can indeed exceed the bulk value. In this work, we combine these Monte Carlo simulations with a continuum model to predict charge carrier concentration profiles. This multiscale approach allows for a realistic prediction of the grain boundary ionic conductivity.
机译:受体掺杂的掺杂的离子电导率受到晶界和界面的强烈影响,大多数实验显示这些区域的电导率下降。经典模型通过形成移动离子电荷载体的空间电荷层来解释该观察。然而,一些实验表明了离子电导率的增加,最近的模型表明,空间电荷层也可以富含移动离子物种。由于这些差异,仍然不确定纳米晶体或薄膜的薄膜纤维纤维是否可以提供优异的离子电导率。最近,我们已经通过蒙特卡罗模拟证明了空间电荷层中的离子电导率确实能够超过散装值。在这项工作中,我们将这些蒙特卡罗模拟与连续素模型相结合以预测电荷载流子集中谱。该多尺度方法允许晶体​​边界离子电导率的真实预测。

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