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Tracking lithium transport and electrochemical reactions in nanoparticles

机译:追踪纳米颗粒中的锂传输和电化学反应

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Expectations for the next generation of lithium batteries include greater energy and power densities along with a substantial increase in both calendar and cycle life. Developing new materials to meet these goals requires a better understanding of how electrodes function by tracking physical and chemical changes of active components in a working electrode. Here we develop a new, simple in-situ electrochemical cell for the transmission electron microscope and use it to track lithium transport and conversion in FeF2 nanoparticles by nanoscale imaging, diffraction and spectroscopy. In this system, lithium conversion is initiated at the surface, sweeping rapidly across the FeF2 particles, followed by a gradual phase transformation in the bulk, resulting in 1–3?nm iron crystallites mixed with amorphous LiF. The real-time imaging reveals a surprisingly fast conversion process in individual particles (complete in a few minutes), with a morphological evolution resembling spinodal decomposition. This work provides new insights into the inter- and intra-particle lithium transport and kinetics of lithium conversion reactions, and may help to pave the way to develop high-energy conversion electrodes for lithium-ion batteries.. ? 2012 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:下一代锂电池的期望包括更高的能量和功率密度,以及日历寿命和循环寿命的大幅增加。开发新材料以满足这些目标需要通过跟踪工作电极中活性成分的物理和化学变化来更好地了解电极的功能。在这里,我们为透射电子显微镜开发了一种新的,简单的原位电化学电池,并利用它通过纳米级成像,衍射和光谱跟踪了FeF 2 纳米颗粒中锂的迁移和转化。在该系统中,锂的转化开始于表面,迅速扫过FeF 2 颗粒,然后在主体中逐渐发生相变,从而导致1-3nm的铁微晶与无定形LiF混合。实时成像揭示了单个粒子中的惊人的快速转换过程(在几分钟内完成),其形态演变类似于旋节线分解。这项工作为粒子间和粒子内锂的传输以及锂转化反应的动力学提供了新的见解,并可能有助于铺平开发用于锂离子电池的高能转化电极的方式。 2012自然出版集团,麦克米伦出版社有限公司的一个部门。版权所有。

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