论文标题

伪二元0.7​​5Bi(FE0.97TI0.03)O3-0.25BATIO3陶瓷的相关化学和结构纳米饰面

Correlative chemical and structural nanocharacterization of a pseudo-binary 0.75Bi(Fe0.97Ti0.03)O3-0.25BaTiO3 ceramic

论文作者

McCartan, Shane J., Calisir, Ilkan, Paterson, Gary W., Webster, Robert W. H., Macgregor, Thomas A., Hall, David A., MacLaren, Ian

论文摘要

烧结或退火后的快速冷却产生了核心壳结构,具有出色的功能性能,但它们的精确相位组合和纳米结构仍然是一个空旷的问题。通过将常规电子能量损失光谱(EEL)与使用直接电子检测器进行扫描进动电子衍射(SPED)映射进行比较,我们将化学组成与存在或不存在八面体倾斜以及晶状体参数的变化相关。这表明某些谷物具有富含Batio3的假壳的3阶段组合。 Bifeo3富含八面体倾斜的富含Bifeo3的外部芯与R3C结构一致;内部核心在BA中更丰富,甚至在Ti中甚至较差,它似乎显示出比壳区域稍小的晶格参数的伪结构。在这些材料中以前尚未确定最后的结构,而是与以前的研究相吻合的组成和结构。这些内核可能是非极性的,并且在铁电特性中不起作用。然而,鳗鱼和SPED的结合清楚地提供了一种具有高空间分辨率的异质微结构的新型方法,从而揭示了可能太微妙而无法通过更传统的技术检测到的相位的存在。

Fast-cooling after sintering or annealing of BiFeO3-BaTiO3 mixed oxide ceramics yields core-shell structures that give excellent functional properties, but their precise phase assemblage and nanostructure remains an open question. By comparing conventional electron energy loss spectroscopy (EELS) with scanning precession electron diffraction (SPED) mapping using a direct electron detector, we correlate chemical composition with the presence or absence of octahedral tilting and with changes in lattice parameters. This reveals that some grains have a 3-phase assemblage of a BaTiO3-rich pseudocubic shell; a BiFeO3-rich outer core with octahedral tilting consistent with an R3c structure; and an inner core richer in Ba and even poorer in Ti, which seems to show a pseudocubic structure of slightly smaller lattice parameter than the shell region. This last structure has not been previously identified in these materials, but the composition and structure fit with previous studies. These inner cores are likely to be non-polar and play no part in the ferroelectric properties. Nevertheless, the combination of EELS and SPED clearly provides a novel way to examine heterogeneous microstructures with high spatial resolution, thus revealing the presence of phases that may be too subtle to detect with more conventional techniques.

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