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Ex-situ tracking solid oxide cell electrode microstructural evolution in a redox cycle by high resolution ptychographic nanotomography

机译:通过高分辨率PTYCHAPORAPOROM记录氧化铈循环中氧化铈纤维电极微观结构演化

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摘要

For solid oxide fuel and electrolysis cells, precise tracking of 3D microstructural change in the electrodes during operation is considered critical to understand the complex relationship between electrode microstructure and performance. Here, for the first time, we report a significant step towards this aim by visualizing a complete redox cycle in a solid oxide cell (SOC) electrode. The experiment demonstrates synchrotron-based ptychography as a method of imaging SOC electrodes, providing an unprecedented combination of 3D image quality and spatial resolution among non-destructive imaging techniques. Spatially registered 3D reconstructions of the same location in the electrode clearly show the evolution of the microstructure from the pristine state to the oxidized state and to the reduced state. A complete mechanical destruction of the zirconia backbone is observed via grain boundary fracture, the nickel and pore networks undergo major reorganization and the formation of internal voids is observed in the nickel-oxide particles after the oxidation. These observations are discussed in terms of reaction kinetics, electrode mechanical stress and the consequences of redox cycling on electrode performance.
机译:对于固体氧化物燃料和电解细胞,在操作期间精确地跟踪电极中的3D微观结构变化,以了解电极微观结构和性能之间的复杂关系至关重要。这里,首次通过在固体氧化物电池(SOC)电极中可视化完全的氧化还原循环来报告朝向这种目标的重要步骤。该实验表明了基于同步的PTychography作为成像SOC电极的方法,提供了非破坏性成像技术中的3D图像质量和空间分辨率的前所未有的组合。电极中相同位置的空间注册的3D重建清楚地示出了从原始状态到氧化状态的微观结构的演变和降低状态。通过晶界骨折观察氧化锆骨架的完全机械破坏,镍和孔网络经历重大重组,在氧化后在氧化镍颗粒中观察到内部空隙的形成。在反应动力学,电极机械应力和氧化还原循环对电极性能的后果方面讨论了这些观察结果。

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