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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Segregated Chemistry and Structure on (001) and (100) Surfaces of (La1-xSrx)(2)CoO4 Override the Crystal Anisotropy in Oxygen Exchange Kinetics
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Segregated Chemistry and Structure on (001) and (100) Surfaces of (La1-xSrx)(2)CoO4 Override the Crystal Anisotropy in Oxygen Exchange Kinetics

机译:(La1-xSrx)(2)CoO4在(001)和(100)表面上的偏析化学和结构取代了氧交换动力学中的晶体各向异性

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Attaining fast oxygen exchange kinetics on perovskite and related mixed ionic and electronic conducting oxides is critical for enabling their applications in electrochemical energy conversion systems. This study focuses on understanding the relationship between surface chemistry and the surface oxygen exchange kinetics on epitaxial films made of (La1-xSrx)(2)CoO4, a prototypical Ruddlesden-Popper structure that is considered as a promising cathode material for fuel cells. The effects of crystal orientation on the surface composition, morphology, oxygen diffusion, and surface exchange kinetics were assessed by combining complementary surface-sensitive analytical techniques, specifically low energy ion scattering, X-ray photoelectron spectroscopy, Auger electron spectroscopy, scanning transmission electron microscopy, atomic force microscopy, and secondary ion mass spectroscopy. The films were grown in two different crystallographic orientations, (001) and (100), and with two different Sr compositions, at x = 0.25 (LSC25) and 0.50 (LSC50), by using pulsed laser deposition. In the as-prepared state, a Sr enriched layer at the top surface and a Co enriched subsurface layer were found on films with both orientations. After annealing at elevated temperatures in oxygen, the Sr enrichment increased, followed by clustering into Sr-rich secondary phase particles. Both the LSC25 and LSC50 films showed anisotropic oxygen diffusion kinetics, with up to 20 times higher oxygen diffusion coefficient along the ab-plane compared that along the c-axis at 400-500 degrees C. However, no dependence of surface oxygen exchange coefficient was found on the crystal orientation. This result indicates that the strong Sr segregation at the surface overrides the effect of the structural anisotropy that was also expected for the surface exchange kinetics. The larger presence of Co cations exposed at the LSC25 surface compared to that at the LSC50 surface is likely the reason for the faster oxygen surface exchange kinetics on LSC25 compared to LSC50. This work demonstrated the critical role of surface chemistry on the oxygen exchange kinetics on perovskite related oxides, which are thus far underexplored at elevated temperatures, and provides a generalizable approach to probe the surface chemistry on other catalytic complex oxides.
机译:在钙钛矿以及相关的混合离子和电子导电氧化物上获得快速的氧交换动力学,对于使其能够用于电化学能量转换系统至关重要。这项研究的重点是理解由(La1-xSrx)(2)CoO4制成的外延膜的表面化学与表面氧交换动力学之间的关系,该膜是典型的Ruddlesden-Popper结构,被认为是燃料电池的有希望的阴极材料。通过结合互补的表面敏感分析技术,特别是低能离子散射,X射线光电子能谱,俄歇电子能谱,扫描透射电子显微镜,评估了晶体取向对表面组成,形态,氧扩散和表面交换动力学的影响。 ,原子力显微镜和二次离子质谱。通过使用脉冲激光沉积,以两种不同的晶体学取向(001)和(100)以及具有两种不同的Sr组成,分别在x = 0.25(LSC25)和0.50(LSC50)下生长薄膜。在准备好的状态下,在两个方向的膜上都发现了位于顶表面的富Sr层和富钴的地下层。在氧气中在升高的温度下退火后,Sr富集度增加,随后聚集成富Sr的次级相颗粒。 LSC25和LSC50膜均表现出各向异性的氧扩散动力学,在400-500摄氏度时,沿a轴的氧扩散系数比沿c轴的氧扩散系数高20倍。但是,表面氧交换系数没有依赖性在晶体取向上发现。该结果表明,表面上的强Sr偏析优于结构各向异性的影响,这也是表面交换动力学所期望的。与LSC50表面相比,在LSC25表面暴露的Co阳离子的存在更大,这可能是LSC25上氧表面交换动力学比LSC50更快的原因。这项工作证明了表面化学对钙钛矿相关氧化物的氧交换动力学的关键作用,因此在升高的温度下迄今尚未得到充分探索,并提供了一种可通用的方法来探测其他催化复合氧化物的表面化学。

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