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Factors affecting cyclic durability of all-solid-state lithium batteries using poly(ethylene oxide)-based polymer electrolytes and recommendations to achieve improved performance

机译:使用聚(环氧乙烷)基于聚合物电解质和建议实现全固态锂电池循环耐久性的因素及建议实现改进的性能

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A detailed experimental analysis of the factors affecting cyclic durability of all-solid-state lithium batteries using poly(ethylene oxide)-based polymer electrolytes was published in EES by Nakayama et al. We use quantum mechanics to interpret these results, identifying processes involved in the degradation of rechargeable lithium batteries based on polyethylene oxide (PEO) polymer electrolyte with LiTFSI. We consider that ionization of the electrolyte near the cathode at the end of the recharge step is probably responsible for this degradation. We find that an electron is likely removed from PEO next to a TFSI anion, triggering a sequence of steps leading to neutralization of a TFSI anion and anchoring of another TFSI to the PEO. This decreases the polymer conductivity near the cathode, making it easier to ionize additional PEO and leading to complete degradation of the battery. We refer to this as the Cathode Overpotential Driven Ionization of the Solvent (CODIS) model. We suggest possible ways to confirm experimentally our interpretation and propose modifications to suppress or reduce electrolyte degradation.
机译:Nakayama等人在EES中公布了影响全固态锂电池循环耐久性的因素的详细实验分析。我们使用量子力学来解释这些结果,识别基于聚环氧乙烷(PEO)聚合物电解质与LITFSI的可再充电锂电池降解的过程。我们认为在充电步骤结束时阴极附近电解质的电离可能负责这种降解。我们发现,电子可能从TFSI阴离子旁边的PEO移除,触发一系列步骤,导致将另一个TFSI锚固到PEO的TFSI阴离子和锚固。这降低了阴极附近的聚合物电导率,使得更容易电离额外的PEO并导致电池的完全降解。我们将此称为溶剂(CODIS)模型的阴极过电驱动电离。我们建议在实验中确认我们的解释和提出修改以抑制或降低电解质降解的方法。

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