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首页> 外文期刊>Applied Surface Science >Probing the in-depth distribution of organic/inorganic molecular species within the SEI of LTO/NMC and LTO/LMO batteries: A complementary ToF- SIMS and XPS study
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Probing the in-depth distribution of organic/inorganic molecular species within the SEI of LTO/NMC and LTO/LMO batteries: A complementary ToF- SIMS and XPS study

机译:探索LTO / NMC和LTO / LMO电池的SEI中有机/无机分子种类的深入分布:互补的ToF-SIMS和XPS研究

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Spinel Li4Ti5O12 (LTO) is an attractive candidate for negative electrode materials of Li-ion batteries because of its outstanding safety characteristics. In this paper, the influence of common high voltage cathodes, LiNi3/5Co1/5Mn1/5O2 (NMC) and LiMn2O4 (LMO), upon the electrochemical performances of LTO/LMO and LTO/NMC cells, in relation with the Solid Electrolyte Interphase (SEI) properties formed over the LTO surface, is studied. After cycling, the electrodes were analyzed by ToF-SIMS and XPS with two X-ray sources (Ag and Al) to investigate both the chemical composition and the in-depth distribution of specific SEI species at the electrode surface. Facing both counter-electrodes, LTO electrodes are covered by surface layers due to the degradation of electrolyte components inducing an irreversible capacity loss, more important for LTO/LMO cells. The chemical composition of both layers is similar: organic and inorganic species but the SEI formed on LTO electrode cycled facing LMO electrode is thicker and contains small amounts of manganese compounds from the positive electrode. Moreover, 3D mappings reconstructed from ToF-SIMS depth-profile experiments, display different indepth spatial distributions of SEI species, which are in agreement with XPS results. Consequently, the impact of interactions between electrodes on the formation of surface films is discussed.
机译:尖晶石Li4Ti5O12(LTO)具有出色的安全特性,因此是锂离子电池负极材料的有吸引力的候选材料。在本文中,常见的高压阴极LiNi3 / 5Co1 / 5Mn1 / 5O2(NMC)和LiMn2O4(LMO)对LTO / LMO和LTO / NMC电池的电化学性能的影响,与固体电解质中间相有关(研究了在LTO表面形成的SEI)特性。循环后,用ToF-SIMS和XPS用两个X射线源(Ag和Al)分析电极,以研究化学成分和特定SEI种类在电极表面的深度分布。面对两个反电极,由于电解质成分的降解导致不可逆的容量损失,LTO电极被表面层覆盖,这对于LTO / LMO电池更重要。这两层的化学成分相似:有机和无机物质,但在循环面对LMO电极的LTO电极上形成的SEI较厚,并且包含来自正极的少量锰化合物。此外,从ToF-SIMS深度剖面实验重建的3D映射显示了SEI物种的不同深度空间分布,这与XPS结果一致。因此,讨论了电极之间相互作用对表面膜形成的影响。

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