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4D nano-tomography of electrochemical energy devices using lab-based X-ray imaging

机译:使用实验室的X射线成像电化学能量装置的4D纳米层剖视图

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摘要

Electrochemical energy devices offer a variety of alternate means for low-carbon, multi-scale energy conversion and storage. Reactions in these devices are supported by electrodes with characteristically complex microstructures. To meet the increasing capacity and lifetime demands across a range of applications, it is essential to understand microstructural evolutions at a cell and electrode level which are thought to be critical aspects influencing material and device lifetime and performance. X-ray computed tomography (CT) has become a highly employed method for non-destructive characterisation of such microstructures with high spatial resolution. However, sub-micron resolutions present significant challenges for sample preparation and handling particularly in 4D studies, (three spatial dimensions plus time). Here, microstructural information is collected from the same region of interest within two electrode materials: a solid oxide fuel cell and the positive electrode from a lithium-ion battery. Using a lab-based X-ray instrument, tomograms with sub-micron resolutions were obtained between thermal cycling. The intricate microstructural evolutions captured within these two materials provide model examples of 4D X-ray nano-CT capabilities in tracking challenging degradation mechanisms. This technique is valuable in the advancement of electrochemical research as well as broader applications for materials characterisation.
机译:电化学能量装置提供各种用于低碳,多尺度能量转换和储存的替代方法。这些装置中的反应由具有特性复杂的微结构的电极支撑。为了满足在一系列应用中的容量和寿命所需的增加,必须了解细胞和电极水平的微观结构演进,这被认为是影响材料和设备寿命和性能的关键方面。 X射线计算断层扫描(CT)已成为具有高空间分辨率的这种微结构的非破坏性表征的高度采用的方法。然而,亚微米分辨率为样品制备和尤其在4D研究中处理的显着挑战(三个空间尺寸加时间)。这里,从两个电极材料的相同感兴趣区域收集微结构信息:固体氧化物燃料电池和来自锂离子电池的正电极。使用基于实验室的X射线仪器,在热循环之间获得了具有亚微米分辨率的断层图像。在这两种材料中捕获的复杂微观结构演进提供了在跟踪具有挑战性的降解机制的4D X射线纳米CT能力的模型示例。这种技术在电化学研究的进步以及更广泛的材料表征应用中是有价值的。

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