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Overpotentials and solid electrolyte interphase formation at porous graphite electrodes in mixed ethylene carbonate-propylene carbonate electrolyte systems

机译:多孔石墨电极在混合碳酸亚丙酯电解质系统中的过电势和固体电解质相互作用

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摘要

The first electrochemical lithium insertion was characterized for several graphite materials with high degree of crystallinity, different particle size distributions and surface morphologies in an ethylene carbonate (EC)/propylene carbonate (PC) electrolyte. For coarser graphite materials and graphites with a low superficial defect concentration, an irreversible process was observed which correlated with the electrochemical exfoliation of graphite. Different natural and synthetic graphites with similar particle size distribution and active surface area showed differences in the passivation behavior during the first electrochemical reduction. The fraction of graphite particles exfoliating during the first galvanostatic lithium insertion linearly increased with length of the irreversible plateau, which concomitantly moved to more positive potentials. This behavior can be rationalized when considering, besides the surface structure, local overpotentials for the solid electrolyte interphase formation process, and especially the overpotential distribution through the graphite electrode. These overpotentials cause a distribution of the local current density attributed to the passivation process. Optimizing the particle contacts in the electrode by applying mechanical pressure or by selecting the proper binder decreased the overpotentials and suppressed the graphite exfoliation in the EC/PC electrolyte. Therefore, both graphite surface structure and electrode engineering aspects have to be considered for successful passivation against exfoliation.
机译:第一种电化学锂插入的特征在于具有高度结晶度,不同粒度分布和在碳酸亚丙酯(EC)/碳酸亚丙酯(PC)电解质中的不同粒度分布和表面形态的石墨材料。对于具有低浅表缺陷浓度的粗糙石墨材料和石墨,观察到与石墨的电化学剥离相关的不可逆过程。具有相似粒度分布和有源表面积的不同的自然和合成石墨,在第一电化学减少期间显示出钝化行为的差异。在第一电流静脉锂插入期间剥离的石墨颗粒的级分线性地增加了不可逆平台的长度,该长度伴随着更阳性电位。除了表面结构,用于固体电解质相互相位的过程的局部过电位,尤其是通过石墨电极的过电流分布,可以在考虑时进行合理化该行为。这些过电位导致归因于钝化过程的局部电流密度的分布。通过施加机械压力或通过选择适当的粘合剂来优化电极中的粒子触点降低,并且抑制了EC / PC电解质中的石墨剥离。因此,必须考虑石墨表面结构和电极工程方面,以便成功地钝化剥离。

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