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Strongly enhanced oxygen ion transport through samarium-doped CeO2 nanopillars in nanocomposite films

机译:通过掺mar的CeO2纳米柱在纳米复合薄膜中大大增强了氧离子的传输

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摘要

Enhancement of oxygen ion conductivity in oxides is important for low-temperature (<500 °C) operation of solid oxide fuel cells, sensors and other ionotronic devices. While huge ion conductivity has been demonstrated in planar heterostructure films, there has been considerable debate over the origin of the conductivity enhancement, in part because of the difficulties of probing buried ion transport channels. Here we create a practical geometry for device miniaturization, consisting of highly crystalline micrometre-thick vertical nanocolumns of Sm-doped CeO2 embedded in supporting matrices of SrTiO3. The ionic conductivity is higher by one order of magnitude than plain Sm-doped CeO2 films. By using scanning probe microscopy, we show that the fast ion-conducting channels are not exclusively restricted to the interface but also are localized at the Sm-doped CeO2 nanopillars. This work offers a pathway to realize spatially localized fast ion transport in oxides of micrometre thickness.
机译:氧化物中氧离子电导率的提高对于固体氧化物燃料电池,传感器和其他离子电子设备的低温(<500 C)运行至关重要。尽管在平面异质结构膜中已证明了巨大的离子电导率,但对于电导率增强的起源仍存在相当多的争论,部分原因是难以探测掩埋的离子传输通道。在这里,我们创建了一种用于设备小型化的实用几何图形,该几何图形由嵌入SrTiO3支撑基质中的Sm掺杂CeO2的高结晶微米级垂直纳米柱组成。离子电导率比普通的掺Sm的CeO2薄膜高一个数量级。通过使用扫描探针显微镜,我们显示出快速离子传导通道不仅限于界面,而且位于掺Sm的CeO2纳米柱上。这项工作为在微米厚度的氧化物中实现空间局部快速离子迁移提供了途径。

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