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Atomic Resolution Study of Reversible Conversion Reaction in Metal Oxide Electrodes for Lithium-Ion Battery

机译:锂离子电池金属氧化物电极中可逆转化反应的原子分辨率研究

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摘要

Electrode materials based on conversion reactions with lithium ions have shown much higher energy density than those based on intercalation reactions. Here, nanocubes of a typical metal oxide (Co3O4) were grown on few-layer graphene, and their electrochemical lithiation and delithiation were investigated at atomic resolution by in situ transmission electron microscopy to reveal the mechanism of the reversible conversion reaction. During lithiation, a lithium-inserted Co3O4 phase and a phase consisting of nanosized Co-Li-O clusters are identified as the intermediate products prior to the subsequent formation of Li2O crystals. In delithiation, the reduced metal nanoparticles form a network and breakdown into even smaller clusters that act as catalysts to prompt reduction of Li2O, and CoO nanoparticles are identified as the product of the deconversion reaction. Such direct real-space, real-time atomic-scale observations shed light on the phenomena and mechanisms in reaction-based electrochemical energy conversion and provide impetus for further development in electrochemical charge storage devices.
机译:与锂离子转化反应相比,基于锂离子转化反应的电极材料具有更高的能量密度。在这里,典型的金属氧化物(Co3O4)的纳米立方体生长在几层石墨烯上,并通过原位透射电子显微镜以原子分辨率研究了它们的电化学锂化和脱锂,以揭示可逆转化反应的机理。在锂化过程中,在随后形成Li2O晶体之前,将插入锂的Co3O4相和由纳米级Co-Li-O簇组成的相识别为中间产品。在脱锂过程中,还原的金属纳米颗粒形成网络并分解为甚至更小的簇,这些簇起催化剂的作用,以促使Li2O迅速还原,而CoO纳米颗粒被确定为反转化反应的产物。这种直接的实时,实时原子级观测揭示了基于反应的电化学能量转换中的现象和机理,并为电化学电荷存储设备的进一步发展提供了动力。

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