溶剂离子液体[Li(Triglyme)][NTf2]的结构转变:对自扩散、粘度和离子电导率的影响。

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Jule Kristin Philipp, Lennart Kruse, Dietmar Paschek, Ralf Ludwig
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引用次数: 0

摘要

溶剂离子液体(SILs)是一种很有前途的新型锂离子电池电解质。突出的SIL候选物是锂盐与弱相互作用阴离子和glyme的等摩尔混合物。特别是,锂二(三氟甲烷磺酰基)亚胺([Li][NTf2])和甘油三酯(G3)的等摩尔混合物引起了极大的兴趣。有人认为,这种混合物表现出类似于离子液体的行为,因为[Li]+与G3分子形成了稳定的1:1配合物。我们利用多微秒的分子动力学(MD)模拟来更好地理解不同混合比例和温度下混合物的结构和动力学,并表征[Li]+配合物的典型配位模式。我们发现,在低[Li][NTf2]含量时,每个[Li]+阳离子平均由两个G3分子配位。对于接近等摩尔的混合物,络合物变成一个三重g3配位的阳离子加上一个额外的阴离子。当盐浓度高于等摩尔盐浓度时,阳离子越来越多地被它们的反离子包围,在相邻的阴离子之间形成锂桥。我们观察到,结构主要取决于混合物的组成,而它是显著的温度不敏感。后者表明,SIL中的簇平衡只受小熵差的影响,在超过200°C时仍保持类似SIL的结构特征。我们证明了结构变化对系统的输运性质有重大影响。在所研究的温度下,随着[Li][NTf2]含量的增加,各组分的自扩散系数降低了几个数量级,而粘度则明显增加。当摩尔分数在0.4 ~ 0.5之间时,[Li]+和G3协同移动,自扩散系数相近,形成稳定的1:1配合物。我们的结论是,这些混合物可以归类为高度温度稳定的SILs,可能对电池技术产生影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural Transformations within the Solvate Ionic Liquid [Li(Triglyme)][NTf2]: Implications for Self-Diffusion, Viscosity, and Ionic Conductivity.

Solvate ionic liquids (SILs) are a promising new class of electrolytes for lithium-ion batteries. Prominent SIL candidates are equimolar mixtures of lithium salts with weakly interacting anions and glyme. In particular, the equimolar mixture of lithium bis(trifluoromethanesulfonyl)imide ([Li][NTf2]) and triglyme (G3) is of great interest. It has been suggested that this mixture exhibits a behavior similar to ionic liquids due to the formation of stable 1:1 complexes of [Li]+ with G3 molecules. We use up to multimicrosecond molecular dynamics (MD) simulations to better understand the structure and dynamics of the mixtures for varying mixing ratios and temperatures and to characterize the typical coordination patterns of the [Li]+ complexes. We find that at low [Li][NTf2] content, each [Li]+ cation is, on average, coordinated by two G3 molecules. For nearly equimolar mixtures, the complex changes to a one-fold G3-coordinated cation plus one additional anion. For higher than equimolar salt concentrations, cations are increasingly surrounded by their counterions, forming lithium bridges between adjacent anions. We observe that the structure primarily depends on the mixture composition, while it is remarkably temperature-insensitive. The latter suggests that cluster equilibria in the SIL are subject to only small entropy differences, retaining the SIL-like structural features up to more than 200 °C. We demonstrate that the structural changes have a major impact on the transport properties of the system. For the investigated temperatures, the self-diffusion coefficients of all components decrease by several orders of magnitude with increasing [Li][NTf2] content, while the viscosity strongly increases. For mole fractions between 0.4 and 0.5, both [Li]+ and G3 move concertedly and exhibit similar self-diffusion coefficients, indicating the formation of stable 1:1 complexes. We conclude that these mixtures can be categorized as highly temperature-stable SILs with possible implications for battery technology.

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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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