Schröder C, Rudas T, Neumayr G, Benkner S, Steinhauser O
Department of Computational Biological Chemistry, University of Vienna, Austria.
J Chem Phys. 2007 Dec 21;127(23):234503. doi: 10.1063/1.2805074.
In this work, the collective structure of aqueous solutions of ionic liquids was studied by means of molecular dynamics simulations. Various concentrations of 1-butyl-3-methyl-imidazolium tetrafluoroborate and TIP3P water were simulated at the very same size of the simulation box. For the analysis, the ternary system cation/anion/water was subdivided into binary networks. The local structure of each of these six networks is investigated by atom-atom radial distribution functions as well as by the so-called g coefficients, which reveal the mutual orientation of the network constituting partners. Furthermore, the collective structure of the whole samples was characterized by the contribution of each species to the static dielectric constant epsilon(omega=0) and to the Kirkwood G(K) factor. The combination of the analysis tools mentioned above provides knowledge about the cross-linking of the ionic species with the dipolar water. Thereby, the interplay between charge-charge and hydrogen bond networks is analyzed in detail.
在这项工作中,通过分子动力学模拟研究了离子液体水溶液的聚集结构。在相同尺寸的模拟盒中模拟了不同浓度的1-丁基-3-甲基咪唑四氟硼酸盐和TIP3P水。为了进行分析,将三元体系阳离子/阴离子/水细分为二元网络。通过原子-原子径向分布函数以及所谓的g系数研究这六个网络中每个网络的局部结构,g系数揭示了构成网络的伙伴之间的相互取向。此外,通过每种物质对静态介电常数ε(ω=0)和柯克伍德G(K)因子的贡献来表征整个样品的聚集结构。上述分析工具的结合提供了关于离子物种与偶极水交联的知识。由此,详细分析了电荷-电荷和氢键网络之间的相互作用。