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用陶瓷固体电解质直接观察锂金属枝晶。

Direct observation of lithium metal dendrites with ceramic solid electrolyte.

作者信息

Golozar Maryam, Paolella Andrea, Demers Hendrix, Savoie Sylvio, Girard Gabriel, Delaporte Nicolas, Gauvin Raynald, Guerfi Abdelbast, Lorrmann Henning, Zaghib Karim

机构信息

Center of Excellence in Transportation Electrification and Energy Storage, Hydro-Québec, Varennes, QC, J0L 1N0, Canada.

Department of Mining and Materials Engineering, McGill University, Montreal, QC, H3A 0C5, Canada.

出版信息

Sci Rep. 2020 Oct 27;10(1):18410. doi: 10.1038/s41598-020-75456-0.

Abstract

Dendrite formation, which could cause a battery short circuit, occurs in batteries that contain lithium metal anodes. In order to suppress dendrite growth, the use of electrolytes with a high shear modulus is suggested as an ionic conductive separator in batteries. One promising candidate for this application is LiLaZrO (LLZO) because it has excellent mechanical properties and chemical stability. In this work, in situ scanning electron microscopy (SEM) technique was employed to monitor the interface behavior between lithium metal and LLZO electrolyte during cycling with pressure. Using the obtained SEM images, videos were created that show the inhomogeneous dissolution and deposition of lithium, which induce dendrite growth. The energy dispersive spectroscopy analyses of dendrites indicate the presence of Li, C, and O elements. Moreover, the cross-section mapping comparison of the LLZO shows the inhomogeneous distribution of La, Zr, and C after cycling that was caused by lithium loss near the Li electrode and possible side reactions. This work demonstrates the morphological and chemical evolution that occurs during cycling in a symmetrical Li-Li cell that contains LLZO. Although the superior mechanical properties of LLZO make it an excellent electrolyte candidate for batteries, the further improvement of the electrochemical stabilization of the garnet-lithium metal interface is suggested.

摘要

枝晶形成会导致电池短路,它发生在含有锂金属阳极的电池中。为了抑制枝晶生长,建议使用具有高剪切模量的电解质作为电池中的离子导电隔膜。这种应用的一个有前景的候选材料是LiLaZrO(LLZO),因为它具有优异的机械性能和化学稳定性。在这项工作中,采用原位扫描电子显微镜(SEM)技术来监测锂金属与LLZO电解质在压力循环过程中的界面行为。利用获得的SEM图像,制作了显示锂不均匀溶解和沉积的视频,这些过程会诱导枝晶生长。对枝晶的能量色散光谱分析表明存在锂、碳和氧元素。此外,LLZO的横截面映射比较显示,循环后La、Zr和C的分布不均匀,这是由锂电极附近的锂损失和可能的副反应引起的。这项工作展示了在含有LLZO的对称锂-锂电池循环过程中发生的形态和化学演变。尽管LLZO优异的机械性能使其成为电池的优秀电解质候选材料,但仍建议进一步改善石榴石-锂金属界面的电化学稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/64e8/7592047/a2bb7201baaf/41598_2020_75456_Fig1_HTML.jpg

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