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Ionic conductivities and high resolution microscopic evaluation of grain and grain boundaries of cerium-based codoped solid electrolytes

机译:离子导电性和高分辨率微观评价铈基编排固体电解质的晶粒和晶界

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摘要

Doped CeGdO and codoped CeGdOSmO compositions were synthesized, giving rise to nanoparticulate powders. Ionic conductivities at bulk and grain boundaries of the sintered samples were determined, exhibiting increased conductivity in the samaria-codoped samples. Scanning electron microscopy (SEM) showed a significant reduction in the grain size of samaria-codoped electrolytes. This reduced grain size of the codoped samples caused a reduction in Schottky barrier height, increasing oxygen vacancy concentration in the space-charge layer of the grain boundary and culminating in greater ionic conductivity in the boundary region. For the gadolinium doped samples, high resolution transmission electron microscopy images at grains showed the presence of large cluster of defects (nanodomains), hindering the movement of charge carriers and reducing ionic conductivity. However, the samaria-codoped system displayed better homogeneity at atomic level, resulting in reduced oxygen vacancy ordering and, consequently, smaller nanodomains and higher bulk (grain) conductivity. The reduced grain sizes and smaller nanodomains caused by codoping favor the ionic conductivity of ceria-based ceramics, doped with gadolinia and codoped with samaria.
机译:合成掺杂的CEGDO和编排的CEGDOSMO组合物,产生纳米颗粒粉末。测定烧结样品的体积和晶界的离子导电性,在撒玛撒利亚编码样品中表现出增加的导电性。扫描电子显微镜(SEM)显示撒玛菊属植物型电解质的晶粒尺寸显着降低。这种缩小的编码样品的晶粒尺寸引起了肖特基势垒高度的降低,增加了晶界的空间电荷层中的氧空位浓度,并在边界区域中最高的离子电导率。对于钆掺杂样品,晶粒的高分辨率透射电子显微镜图像显示出大污染缺陷(纳米染色物),阻碍电荷载体的运动并降低离子电导率。然而,Samaria编码系统在原子水平上显示出更好的均匀性,导致氧空位排序减少,因此,较小的纳米染色液和更高的散装(晶粒)电导率。通过重新加工引起的晶粒尺寸和较小的纳米二染粉,赞成有利于基于Ceria的陶瓷的离子电导率,掺杂含加达洛尼蛋白并用撒玛利亚编写。

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