Materials Science and Technology Division, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831, United States.
Center for Electron Microscopy Research, Korea Basic Science Institute , Daejeon 34133, South Korea.
ACS Nano. 2017 Jul 25;11(7):6942-6949. doi: 10.1021/acsnano.7b02188. Epub 2017 Jun 14.
Vacancy dynamics and ordering underpin the electrochemical functionality of complex oxides and strongly couple to their physical properties. In the field of the epitaxial thin films, where connection between chemistry and film properties can be most clearly revealed, the effects related to oxygen vacancies are attracting increasing attention. In this article, we report a direct, real-time, atomic level observation of the formation of oxygen vacancies in the epitaxial LaCoO thin films and heterostructures under the influence of the electron beam utilizing scanning transmission electron microscopy (STEM). In the case of LaCoO/SrTiO superlattice, the formation of the oxygen vacancies is shown to produce quantifiable changes in the interatomic distances, as well as qualitative changes in the symmetry of the Co sites manifested as off-center displacements. The onset of these changes was observed in both the [100] and [110] orientations in real time. Additionally, annular bright field images directly show the formation of oxygen vacancy channels along [110]pc direction. In the case of 15 u.c. LaCoO thin film, we observe the sequence of events during beam-induced formation of oxygen vacancy ordered phases and find them consistent with similar processes in the bulk. Moreover, we record the dynamics of the nucleation, growth, and defect interaction at the atomic scale as these transformations happen. These results demonstrate that we can track dynamic oxygen vacancy behavior with STEM, generating atomic-level quantitative information on phase transformation and oxygen diffusion.
空位动态和有序是支撑复杂氧化物电化学功能的基础,并与它们的物理性质强烈耦合。在可以最清楚地揭示化学与薄膜性质之间联系的外延薄膜领域中,与氧空位相关的效应引起了越来越多的关注。在本文中,我们报告了利用扫描透射电子显微镜(STEM)在电子束影响下,外延 LaCoO 薄膜和异质结构中氧空位形成的直接、实时、原子级别的观察。在 LaCoO/SrTiO 超晶格的情况下,氧空位的形成被证明会导致原子间距离的可量化变化,以及 Co 位对称性的定性变化,表现为中心位移。这些变化在实时的[100]和[110]方向上都被观察到。此外,环形明场图像直接显示了氧空位通道沿着[110]pc 方向的形成。在 15 u.c. LaCoO 薄膜的情况下,我们观察了在电子束诱导下形成氧空位有序相过程中的一系列事件,并发现它们与体相中的类似过程一致。此外,我们记录了这些转变发生时在原子尺度上的成核、生长和缺陷相互作用的动力学。这些结果表明,我们可以使用 STEM 跟踪动态氧空位行为,生成关于相变和氧扩散的原子级定量信息。