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An Investigation of Chemo-Mechanical Phenomena and Li Metal Penetration in All-Solid-State Lithium Metal Batteries Using In Situ Optical Curvature Measurements

机译:基于原位光学曲率测量的全固态锂金属电池化学力学现象和锂金属渗透研究

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摘要

Solid-electrolytes (SEs) can provide a pathway to increase energy-density in lithium metal batteries. However, lithium metal penetration through garnet based LLZO solid electrolytes has been identified as a critical failure process. This phenomenon is related to chemo-mechanical processes which are difficult to probe. In particular, characterizing the dynamic mechanical deformations that occur in electrode-SE structures is very challenging. This study reports in situ curvature measurements that are thus designed to probe chemo-mechanical phenomena that occur during lithium plating. The novel experimental cell configuration created for this work shows that pressure builds up in the Li metal during plating, up until the point where short circuits occur. The resulting data are analyzed with a detailed finite element model (FEM) to quantitatively evaluate stress evolution. The results show that Li metal plating within a surface flaw can produce stress build-up prior to short-circuiting. The combined results from both the experiments and the FEM suggest that it is critical to minimize surface defects and flaws during the manufacturing processes.
机译:固体电解质 (SE) 可以提供提高锂金属电池能量密度的途径。然而,锂金属通过石榴石基LLZO固体电解质的渗透已被确定为一个关键的失效过程。这种现象与难以探测的化学机械过程有关。特别是,表征电极-SE结构中发生的动态机械变形非常具有挑战性。本研究报告了原位曲率测量,因此旨在探测镀锂过程中发生的化学机械现象。为这项工作创建的新型实验单元配置表明,在电镀过程中,压力会在锂金属中积聚,直到发生短路。使用详细的有限元模型 (FEM) 对所得数据进行分析,以定量评估应力演变。结果表明,表面缺陷内的锂金属镀层会在短路之前产生应力积聚。实验和有限元法的综合结果表明,在制造过程中最大限度地减少表面缺陷和缺陷至关重要。

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