论文标题
在SR掺杂的灯笼铁氧体和金属玻璃盐异质结构上解决多种氧气传输途径
Resolving diverse oxygen transport pathways across Sr-doped lanthanum ferrite and metal-perovskite heterostructures
论文作者
论文摘要
钙钛矿结构化过渡金属氧化物是用于催化和固体氧化物燃料电池应用的重要技术材料。它们的功能通常取决于通过复杂的氧化物异质结构的氧扩散性和迁移率,这可能会受到结构和化学修饰(例如掺杂)的显着影响。此外,当在电化学细胞中使用时,与其他成分(例如NI-和CR基和CR的合金电极和互连)的界面反应会影响钙钛矿的反应性和离子运输,从而导致在现实世界环境中难以控制的复杂依赖性。在这里,我们使用同位素示踪剂和原子探针断层扫描直接可视化氧气扩散和跨钙钛矿和金属栖息地异质结构,即(NI-CR涂层)SR掺杂的灯笼型灯笼铁素(LSFO)。 18o2(G)中的退火通过LSFO中的氧交换(OE)导致元素和同位素再分配,而NI-CR通过多种机制和运输途径进行氧化。在实验条件下的互补密度功能理论(DFT)计算为OE反应机制提供了基本原理,并揭示了不同热力学和动力学驱动因素的复杂相互作用。我们的结果阐明了一类重要类催化材料中缺陷和氧运输的基本耦合。
Perovskite structured transition metal oxides are important technological materials for catalysis and solid oxide fuel cell applications. Their functionality often depends on oxygen diffusivity and mobility through complex oxide heterostructures, which can be significantly impacted by structural and chemical modifications, such as doping. Further, when utilized within electrochemical cells, interfacial reactions with other components (e.g. Ni- and Cr-based alloy electrodes and interconnects) can influence the perovskite's reactivity and ion transport, leading to complex dependencies that are difficult to control in real-world environments. Here we use isotopic tracers and atom probe tomography to directly visualize oxygen diffusion and transport pathways across perovskite and metal-perovskite heterostructures, i.e. (Ni-Cr coated) Sr-doped lanthanum ferrite (LSFO). Annealing in 18O2(g) results in elemental and isotopic redistributions through oxygen exchange (OE) in the LSFO while Ni-Cr undergoes oxidation via multiple mechanisms and transport pathways. Complementary density functional theory (DFT) calculations at experimental conditions provide rationale for OE reaction mechanisms and reveal a complex interplay of different thermodynamic and kinetic drivers. Our results shed light on the fundamental coupling of defects and oxygen transport in an important class of catalytic materials.