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Functional ionic liquids for enhancement of Li-ion transfer: the effect of cation structure on the charge-discharge performance of the Li4Ti5O12 electrode

机译:用于增强锂离子转移的功能性离子液体:阳离子结构对Li4Ti5O12电极的充放电性能的影响

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As the development of high energy-density Li-ion batteries moves ahead, ensuring safety of the batteries has become increasingly important. Among the unique physicochemical properties of ionic liquids, thermal stability can be one of the answers to the challenge. The use of ionic liquids, however, causes critical issues concerning the kinetics of Li-ion transfer at the electrode-electrolyte interface. In the present study, ionic liquids consisting of 1-((2-methoxyethoxy)methyl)-1-methylpiperidinium (PP1MEM) or 1-hexyl-1-methylpiperidinium (PP16) and bis(trifluoromethanesulfonyl)amide (TFSA) were applied to an electrolyte for Li-ion batteries, and we investigated the effect of cation structure on interfacial Li-ion transfer using Li4Ti5O12 as a model electrode by means of Raman spectroscopy and electrochemical impedance spectroscopy. It was found that the ether functional group in the PP1MEM cation has the meaningful function; the cation structure reduces the electrostatic interaction between the Li ion and TFSA anions in an ionic liquid electrolyte. The solvation number of the TFSA anion per Li ion consequently became smaller than that in PP16-TFSA, and the lower solvation number in PP1MEM-TFSA allowed the facile Li-ion diffusion in the electrolyte bulk rather than the interfacial Li-ion transfer and significantly improved the rate performance. The results offer the prospect of utilization of PP1MEM-TFSA as an electrolyte solvent. The knowledge obtained from this study contributes to the development of next-generation Li-ion batteries having both high energy density and high safety.
机译:随着高能量密度锂离子电池的发展向前发展,确保电池的安全性变得越来越重要。在离子液体的独特物理化学特性中,热稳定性可能是挑战的答案之一。然而,离子液体的使用引起与电极-电解质界面处的锂离子转移动力学有关的关键问题。在本研究中,将由1-((2-甲氧基乙氧基)甲基)-1-甲基哌啶(PP1MEM)或1-己基-1-甲基哌啶(PP16)和双(三氟甲磺酰基)酰胺(TFSA)组成的离子液体应用于锂离子电池的电解质,我们通过拉曼光谱和电化学阻抗谱研究了以Li4Ti5O12为模型电极的阳离子结构对界面Li离子转移的影响。发现PP1MEM阳离子中的醚官能团具有有意义的功能。阳离子结构减少了离子液体电解质中Li离子和TFSA阴离子之间的静电相互作用。因此,每Li离子的TFSA阴离子的溶剂化数变得比PP16-TFSA中的小,而PP1MEM-TFSA中较低的溶剂化数则使Li-离子易于在电解质主体中扩散,而不是界面Li-离子转移,并且明显提高了费率性能。结果提供了将PP1MEM-TFSA用作电解质溶剂的前景。从这项研究中获得的知识有助于开发具有高能量密度和高安全性的下一代锂离子电池。

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