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Study of the LiMn\u2081.\u2085Ni\u2080.\u2085O\u2084/electrolyte interface at room temperature and 60\ub0C

机译:LiMn \ u2081。\ u2085Ni \ u2080。\ u2085O \ u2084 /电解质在室温和60 \ ub0C下的界面研究

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摘要

The surface layer (Cathode-Electrolyte Interface; CEI) on LiMn1.5Ni0.5O4, a promising, high voltage positive electrode for Li-ion batteries, was studied by XPS, AC impedance spectroscopy and FTIR spectroscopy. Half cells and full cells with LiMn1.5Ni0.5O4 as positive electrode material and Li4Ti5O12 as a negative electrode material were assembled in conventional carbonate-based electrolytes with LiPF6 or LiBF4 as the salt, and the effect of cycling at different operating conditions (short and long storage time, state of charge and temperature) on the surface layer composition was assessed. Capacities reaching near the theoretical value of 140 mAh g\u22121 were obtained in half cells cycled at C/2 and room temperature, with 85% of the capacity being retained after 100 cycles. Cycling at 60\ub0C leads to a decrease in capacity and coulombic efficiency. The surface analysis by XPS revealed that the CEI is composed of inorganic species such as LiF and LixPFyOz or LixBFyOz as well as organic species such as polyethers and carbonates. Generally, it was found that cycling or storing the material at 60\ub0C with an electrolyte using LiPF6 as a salt yield more organic species and less LiF at the surface than the one with LiBF4.
机译:通过XPS,交流阻抗谱和FTIR光谱研究了LiMn1.5Ni0.5O4上的表面层(阴极-电解质界面; CEI),这是一种很有前景的锂离子电池高压正极。以LiMn1.5Ni0.5O4为正极材料和Li4Ti5O12为负极材料的半电池和全电池在传统的碳酸盐基电解液中组装,并以LiPF6或LiBF4为盐,并在不同的操作条件下(短时间和短时间)循环。评估在表面层组合物上的长时间储存​​,电荷状态和温度。在C / 2和室温下循环的半电池中,达到了接近理论值140 mAh g \ u22121的容量,在100次循环后,保留了85%的容量。在60 \ ub0C循环会导致容量和库仑效率下降。 XPS的表面分析表明,CEI由无机物质(例如LiF和LixPFyOz或LixBFyOz)以及有机物质(例如聚醚和碳酸盐)组成。通常,已经发现,与使用LiBF4的电解质相比,使用LiPF6作为盐在电解质中循环或存储该材料于60 \ ub0会在表面产生更多的有机物类和更少的LiF。

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