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Interaction of Ultrathin Films of Ethylene Carbonate with Oxidized and Reduced Lithium Cobalt Oxide-A Model Study of the Cathode|Electrolyte Interface in Li-Ion Batteries

机译:碳酸乙酯超薄膜与氧化锂钴氧化物的相互作用 - 锂离子电池阴极界面的模型研究

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Aiming at a detailed, molecular-scale understanding of the initial stages of the solid|electrolyte interphase (SEI) formation in Li-ion batteries, the interaction of the common electrolyte solvent component ethylene carbonate (EC) with fully lithiated LiCoO2 and reduced LiCoO2-delta films as model electrodes for the cathode is investigated. The results are compared with previous findings for pristine and lithiated highly oriented pyrolytic graphite, serving as model anode. Employing X-ray photoelectron spectroscopy (XPS) and ultraviolet photoelectron spectroscopy measurements, it is found that vapor deposition of EC on LiCoO2 and LiCoO2-delta at 80 K results in molecularly adsorbed EC, both in the monolayer and in the multilayer regime. XPS measurements detect significant changes of the adlayer between 170 and 255 K, indicating competing desorption and decomposition. Synchrotron-based XPS measurements reveal a very similar decomposition pattern upon EC deposition on LiCoO2 at close to ambient temperatures. In both cases, the remaining adlayer is mostly composed of Li-containing Symbol of the Klingon Empire C(sic)O, Symbol of the Klingon Empire C Symbol of the Klingon Empire O Symbol of the Klingon Empire C Symbol of the Klingon Empire , Symbol of the Klingon Empire C Symbol of the Klingon Empire H, and Symbol of the Klingon Empire C Symbol of the Klingon Empire C Symbol of the Klingon Empire moieties such as Li2CO3, ROCO2Li, (CH2OCO2Li)(2), and Li2O2. The activated decomposition of EC is caused by interaction with the oxide surface or, more specifically, with surface Li. This process can be considered as the initial stage of the chemical SEI formation.
机译:旨在详细,分子尺度了解锂离子电池中固体电解质间(SEI)形成的初始阶段,共同电解质溶剂组分乙烯碳酸酯(EC)与完全锂化的LiCoO2和减少LiCoO2-的相互作用研究了作为阴极的模型电极的Delta薄膜。将结果与先前的原始结果进行比较,并用作模型阳极。采用X射线光电子能谱(XPS)和紫外线光电子体光谱测量,发现EC在LiCoO2和LiCoO2-Delta的气相沉积在80K上导致分子吸附的EC,无论是单层和多层状态。 XPS测量检测170和255 k之间的adlayer的显着变化,表明竞争解吸和分解。基于同步的XPS测量揭示了在靠近环境温度的LiCoO2上的EC沉积时非常相似的分解图案。在这两种情况下,剩下的adlayer主要由含有碱基帝国(SiC)O的Li的符号组成,Klingon Empire C符号的Klingon Empire o符号的klingon帝国C符号的象征,符号Klingon Empire H的Klingon Empire H的象征,以及Klingon Empire C的Klingon Empire C的象征,如Li 2 CO 3,Roco2li,(2)和Li2O2。 EC的活化分解是由与氧化物表面相互作用引起的,或者更具体地,具有表面Li。该过程可以被认为是化学SEI形成的初始阶段。

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