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Role of solvent-anion charge transfer in oxidative degradation of battery electrolytes

机译:溶剂-阴离子电荷转移在电池电解质氧化降解中的作用

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摘要

Electrochemical stability windows of electrolytes largely determine the limitations of operating regimes of lithium-ion batteries, but the degradation mechanisms are difficult to characterize and poorly understood. Using computational quantum chemistry to investigate the oxidative decomposition that govern voltage stability of multi-component organic electrolytes, we find that electrolyte decomposition is a process involving the solvent and the salt anion and requires explicit treatment of their coupling. We find that the ionization potential of the solvent-anion system is often lower than that of the isolated solvent or the anion. This mutual weakening effect is explained by the formation of the anion-solvent charge-transfer complex, which we study for 16 anion-solvent combinations. This understanding of the oxidation mechanism allows the formulation of a simple predictive model that explains experimentally observed trends in the onset voltages of degradation of electrolytes near the cathode. This model opens opportunities for rapid rational design of stable electrolytes for high-energy batteries.
机译:电解质的电化学稳定性窗口在很大程度上决定了锂离子电池运行方式的局限性,但降解机理难以表征且了解甚少。使用计算量子化学研究控制多组分有机电解质电压稳定性的氧化分解,我们发现电解质分解是一个涉及溶剂和盐阴离子的过程,需要对其偶联进行显式处理。我们发现溶剂-阴离子系统的电离势通常低于分离的溶剂或阴离子的电离势。这种相互削弱的作用可以通过形成阴离子-溶剂电荷转移络合物来解释,我们研究了16种阴离子-溶剂组合。对氧化机理的这种理解可以形成一个简单的预测模型,该模型可以解释通过实验观察到的阴极附近电解质降解的起始电压趋势。该模型为快速合理设计高能电池稳定电解质提供了机会。

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