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Online Digital Holographic Method for Interface Reaction Monitoring in Lithium-Ion Batteries

机译:锂离子电池界面反应监测的在线数字全息方法

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Understanding the reaction mechanisms at the interface of electrode and electrolyte is both of fundamental interest and essential to improve lithium-ion battery (LIB) performance. Herein, we report an online digital holographic method to in situ observe the entire interface change between electrode and electrolyte in lithium-ions batteries. The accuracy of this technology is well verified in LiFePO4/graphite full-cell systems, graphite/Li half-cell systems in EC-based and PC-based electrolyte, respectively, and supported by the characterized results of conventional instruments, including scanning electron microscopy and X-ray photoelectron spectroscopy. In particular, the time resolution of the digital holographic method is 0.04 s and fast enough to distinguish detail reduction process of ethylene carbonate (EC), for which EC will be first reduced to generate lithium alkyl carbonates, and then the reduction product is Li2CO3 to form a stable SEI films. To our best of knowledge, this is the first report on the reduction order of the EC solvent and can act as an effective complement to understanding the formation mechanisms of SEI films.
机译:了解电极和电解质界面处的反应机制是改善锂离子电池(Lib)性能的根本兴趣和必要的。在此,我们在线数字全息方法原位观察锂离子电池电极和电解质之间的整个界面变化。该技术的准确性在LiFepo4 /石墨全细胞系统中,石墨/ Li半电池系统分别在基于EC和基于PC基电解质的石墨/ Li半电池系统中良好验证,并由传统仪器的特征结果支持,包括扫描电子显微镜和X射线光电子能谱。特别地,数字全息方法的时间分辨率为0.04秒,足以区分碳酸亚乙酯(EC)的细节降低过程,首先将EC减少以产生碳酸锂,然后还原产物是Li 2 CO 3形成稳定的SEI薄膜。为了我们最好的知识,这是关于EC溶剂的减少令的第一份报告,并可作为理解SEI电影的形成机制的有效补充。

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