Cui Wei, Lansac Yves, Lee Hochun, Hong Seung-Tae, Jang Yun Hee
School of Materials Science and Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, Korea.
Phys Chem Chem Phys. 2016 Sep 14;18(34):23607-12. doi: 10.1039/c6cp01667g. Epub 2016 Aug 10.
Complex formation between lithium (Li(+)) ions and electrolyte molecules would affect the ionic conductivity through the electrolyte in lithium-ion batteries (LIBs). We hence revisit the solvation number of Li(+) in the most commonly used ethylene carbonate (EC) electrolyte. The solvation number n of Li(+)(EC)n in the first solvation shell of Li(+) is estimated on the basis of the free energy calculated by the density functional theory combined with a hybrid solvation model where the explicit solvation shell of Li(+) is immersed in a free volume of an implicit bulk solvent. This new hybrid solvation (implicit and explicit) model predicts the most probable solvation number (n = 4) and solvation free energy (-91.3 kcal mol(-1)) of Li(+) in a good agreement with those predicted by calculations employing simpler solvation models (either implicit or explicit). The desolvation (n = 2) of Li(0)(EC)n upon reduction near anodes is also well described with this new hybrid model.
锂离子电池(LIBs)中锂离子(Li(+))与电解质分子之间的络合物形成会影响通过电解质的离子电导率。因此,我们重新审视了最常用的碳酸亚乙酯(EC)电解质中Li(+)的溶剂化数。基于密度泛函理论结合混合溶剂化模型计算的自由能,估算了Li(+)第一溶剂化层中Li(+)(EC)n的溶剂化数n,其中Li(+)的显式溶剂化层浸没在隐式本体溶剂的自由体积中。这种新的混合溶剂化(隐式和显式)模型预测的Li(+)最可能溶剂化数(n = 4)和溶剂化自由能(-91.3 kcal mol(-1))与使用更简单溶剂化模型(隐式或显式)计算预测的结果吻合良好。这种新的混合模型也很好地描述了阳极附近还原时Li(0)(EC)n的去溶剂化(n = 2)情况。