含有和的离子液体中多尺度动力学的核磁共振研究:从车载传输机制到跳跃传输机制

Ousmane Karé , Antonio De Souza Braga Neto , Baptiste Rigaud , Quentin Berrod , Sandrine Lyonnard , Clément Cousin , Juliette Sirieix-Plénet , Anne-Laure Rollet , Guillaume Mériguet
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引用次数: 0

摘要

研究了离子液体和单原子阳离子混合物在从纳秒到秒的不同时间尺度下的动力学。混合物由双(三氟甲磺酰)亚胺胆碱([Chol][TFSI])和 LiTFSI 组成,LiTFSI 的摩尔分数从 0 到 0.5(饱和溶液),[Chol][TFSI] 的摩尔分数从 0 到 0.12。为了破译离子间相互交织的动力学,并揭示局部动力学如何影响长程平移扩散,我们测量了Ⅳ和Ⅴ的平移自扩散系数以及它们在不同磁场下的核磁共振弛豫时间。当液体中锂和镧的浓度增加时,所有离子的长程动力学都会下降。在 LiTFSI 的情况下,高浓度时锂的自扩散系数高于 TFSI 的自扩散系数,揭示了锂传输机制的变化。核磁共振弛豫数据证实了这一变化,显示出在......时更明显的转变。这可以解释为锂从下方的车辆传输机制转变为上方的跳跃机制。镧溶液中似乎也发生了类似的转变。这种现象似乎与有机阳离子的羟基离开锂溶壳有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

NMR investigation of multi-scale dynamics in ionic liquids containing Li+ and La3+: From vehicular to hopping transport mechanism

NMR investigation of multi-scale dynamics in ionic liquids containing Li+ and La3+: From vehicular to hopping transport mechanism

The dynamics in mixtures of ionic liquid and monoatomic cations has been studied at different time scales ranging from the nanosecond up to the second. The mixtures were composed of cholinium bis(trifluoromethanesulfonyl)imide ([Chol][TFSI]) and LiTFSI, with LiTFSI mole fraction,

, spanning from 0 to 0.5 (saturated solution), and [Chol][TFSI] and
from 0 to 0.12. The translational self-diffusion coefficients of
,
and
have been measured, along with NMR their relaxation times at various magnetic fields, in order to decipher the intertwined dynamics between the ions, and to reveal how the local dynamics impact the long range translational diffusion. When the concentrations of lithium and lanthanum are increased in the liquid, the long range dynamics of all the ions drop. In the case of LiTFSI, the self-diffusion coefficient of lithium becomes higher than the one of TFSI at high concentration, revealing a change in lithium transport mechanisms. The NMR relaxation data confirm this change, showing a clearer transition at
. It is interpreted as a change from a vehicular transport mechanism of the lithium below
to a hopping mechanism above. A similar crossover seems to occur in the lanthanum solutions. This phenomenon seems correlated to the departure of the hydroxyl group of the organic cation from the lithium solvation shell.

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