Department of Chemistry and Biotechnology, Yokohama National University , 79-5 Tokiwadai, Hodogaya-ku, Yokohama 240-8501, Japan.
J Phys Chem B. 2013 Dec 5;117(48):15072-85. doi: 10.1021/jp407582m. Epub 2013 Nov 22.
We prepared a series of binary mixtures composed of selected Na salts and glymes (tetraglyme, G4, and pentaglyme, G5) with different salt concentrations and anionic species (X: N(SO2CF3)2 = TFSA, N(SO2F)2 = FSA, ClO4(-), PF6(-)) and studied the effects of concentration, anionic structure, and glyme chain length on their phase diagrams and solvate structures. The phase diagrams clearly illustrate that all the mixtures form 1:1 complexes, [Na(G4 or G5)1][X]. The thermal stability of the equimolar mixtures was drastically improved in comparison with those of diluted systems, indicating that all the glyme molecules coordinate to Na(+) cations to form equimolar complexes. Single-crystal X-ray crystallography revealed that [Na(G5)1][X] forms characteristic solvate structures in the crystalline state irrespective of the paired anion species. A comparison of the solvate structures of the glyme-Na complexes with those of the glyme-Li complexes suggests that the ionic radii of the coordinated alkali-metal cations have substantial effects on the resulting solvate structures. The Raman bands of the complex cations were assigned by quantum chemical calculations. Concentration dependencies of cationic and anionic Raman spectra show good agreement with the corresponding phase diagrams. In addition, the Raman spectra of the 1:1 complexes strongly suggest that the glymes coordinate to Na(+) cation in the same way in both liquid and crystalline states. However, the aggregated structure in the crystalline state is broken by melting, which is accompanied by a change in the anion coordination.
我们制备了一系列由选定的 Na 盐和甘醇(四甘醇、G4 和五甘醇、G5)组成的二元混合物,具有不同的盐浓度和阴离子种类(X:N(SO2CF3)2 = TFSA、N(SO2F)2 = FSA、ClO4(-)、PF6(-)),并研究了浓度、阴离子结构和甘醇链长对其相图和溶剂化结构的影响。相图清楚地表明,所有混合物都形成 1:1 配合物,[Na(G4 或 G5)1][X]。与稀释体系相比,等摩尔混合物的热稳定性大大提高,表明所有甘醇分子都与 Na(+)阳离子配位形成等摩尔配合物。单晶 X 射线晶体学揭示,[Na(G5)1][X]在晶体状态下形成特征溶剂化结构,与配对的阴离子种类无关。甘醇-Na 配合物的溶剂化结构与甘醇-Li 配合物的溶剂化结构的比较表明,配位碱金属阳离子的离子半径对所得溶剂化结构有很大影响。配合物阳离子的拉曼带通过量子化学计算进行了分配。阳离子和阴离子拉曼光谱的浓度依赖性与相应的相图很好地吻合。此外,1:1 配合物的拉曼光谱强烈表明,甘醇以相同的方式在液态和固态中与 Na(+)阳离子配位。然而,结晶态中的聚集结构在熔融时被打破,伴随着阴离子配位的变化。