论文标题
深色溶剂中锂离子的溶剂化和运输
Solvation and Transport of Lithium Ions in Deep Eutectic Solvents
论文作者
论文摘要
基于锂的深色溶剂(DESS)是锂离子电池环保电解质的出色候选物。尽管其中一些DES显示出令人鼓舞的结果,但尚未确定DES中锂离子转运的明确机制。这项工作报告了有关使用分子动力学(MD)模拟和中子散射技术制成的DES中锂溶剂化和运输的研究。基于乙酰酰胺与相邻分子/离子的氢键(H键),两个状态在很大程度上很普遍:1)乙酰胺分子H键h-键与锂离子(〜36%)和2)乙酰胺分子完全合并(〜58%)。独立分析其随机动力学,可以观察到,前者的远距离扩散明显慢于后者。这也可以从同一DES系统的中子散射实验中验证。此外,分析锂动力学表明,乙酰胺分子在第一类中的扩散与锂离子的扩散是强烈的。平均而言,锂离子在其第一个溶剂化中h键键成〜3.2乙酰胺分子。通过分析乙酰胺和锂离子之间的H键相关功能进一步加强这些观察结果,这表明约90%的离子离子运输是通过车辆运动实现的,在该车辆运动中,离子与首个溶剂化壳一起扩散。这项工作的发现是理解DES锂离子溶剂化和运输的重要进步。
Lithium based deep eutectic solvents (DESs) are excellent candidates for eco-friendly electrolytes in lithium ion batteries. While some of these DES have shown promising results, a clear mechanism of lithium ion transport in DESs is not yet established. This work reports the study on the solvation and transport of lithium in a DES made from lithium perchlorate and acetamide using Molecular Dynamics (MD) simulation and neutron scattering techniques. Based on hydrogen bonding (H-bonding) of acetamide with neighbouring molecules/ions, two states are largely prevalent: 1) acetamide molecules which are H-bonded to lithium ions (~ 36 %) and 2) acetamide molecules that are entirely free (~ 58%). Analysing their stochastic dynamics independently, it is observed that the long-range diffusion of the former is significantly slower than the latter one. This is also validated from the neutron scattering experiment on the same DES system. Further, the analysis the lithium dynamics shows that the diffusion of acetamide molecules in the first category is strongly coupled to that of lithium ions. On an average the lithium ions are H-bonded to ~ 3.2 acetamide molecules in their first solvation. These observations are further bolstered through the analysis of the H-bond correlation function between acetamide and lithium ions, which show that ~ 90% of lithium ionic transport is achieved by vehicular motion where the ions diffuse along with its first solvation shell. The findings of this work are an important advancement in understanding solvation and transport of lithium ion in DES.