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High-temperature solid electrolyte interphases (SEI) in graphite electrodes

机译:石墨电极中的高温固体电解质相(SEI)

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Thermal fragility of the solid electrolyte interphase (SEI) is a major source of performance decay in graphite anodes, and efforts to overcome the issues offered by extreme environments to Li-ion batteries have had limited success. Here, we demonstrate that the SEI can be extensively reinforced by carrying the formation cycles at elevated temperatures. Under these conditions, decomposition of the ionic liquid present in the electrolyte favored the formation of a thicker and more protective layer. Cells in which the solid electrolyte interphase was cast at 90 degrees C were significantly less prone to self-discharge when exposed to high temperature, with no obvious damages to the formed SEI. This additional resilience was accomplished at the expense of rate capability, as charge transfer became growingly inefficient in these systems. At slower rates, however, cells that underwent SEI formation at 90 degrees C presented superior performances, as a result of improved Li+ transport through the SEI, and optimal wetting of graphite by the electrolyte. This work analyzes different graphite hosts and ionic liquids, showing that this effect is more pervasive than anticipated, and offering the unique perspective that, for certain systems, temperature can actually be an asset for passivation.
机译:固体电解质中间相(SEI)的热脆性是石墨阳极性能下降的主要来源,而克服极端环境给锂离子电池带来的问题的努力取得了有限的成功。在这里,我们证明通过在高温下进行地层循环可以广泛增强SEI。在这些条件下,电解质中存在的离子液体的分解有利于形成更厚和更保护的层。固态电解质界面在90摄氏度下浇铸的电池在暴露于高温下时不易自放电,对形成的SEI没有明显损害。由于电荷传输在这些系统中变得越来越低效,因此以速率能力为代价实现了这种额外的弹性。然而,以较低的速率,在90摄氏度下经历SEI形成的电池表现出卓越的性能,这是由于改善了通过SEI的Li +传输以及电解质对石墨的最佳润湿作用。这项工作分析了不同的石墨基质和离子液体,表明这种作用比预期的更为普遍,并提供了独特的观点,即对于某些系统,温度实际上可以钝化。

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