Department of Chemical Engineering, College of Engineering, Kyung Hee University, 1 Seochong, Giheung, Yongin, Gyeonggi, 446-701, Republic of Korea.
Chemphyschem. 2010 Jun 7;11(8):1711-7. doi: 10.1002/cphc.200900925.
Geometric and conformational changes of zwitter-type ionic liquids (ZILs) due to hydrogen-bonding interactions with water molecules are investigated by density functional theory (DFT), two-dimensional IR correlation spectroscopy (2D IR COS), and pulsed-gradient spin-echo NMR (PGSE NMR). Simulation results indicate that molecular structures in the optimized states are strongly influenced by hydrogen bonding of water molecules with the sulfonate group or imidazolium and pyrrolidinium rings of 3-(1-methyl-3-imidazolio)propanesulfonate (1) and 3-(1-methyl-1-pyrrolidinio)propanesulfonate (2), respectively. Concentration-dependent 2D IR COS reveals kinetic conformational changes of the two ZIL-H(2)O systems attributable to intermolecular interactions, as well as the interactions of sulfonate groups and imidazolium or pyrrolidinium rings with water molecules. The dramatic changes in the (1)H self-diffusion coefficients elucidate the formation of proton-conduction pathways consisting of ZIL networks. In ZIL domains, protons are transferred by a Grotthuss-type mechanism through formation, breaking, and restructuring of bonds between ZILs and H(2)O, leading to an energetically favorable state. The simulation and experimental investigations delineated herein provide a perspective to understanding the interactions with water from an academic point of view as well as to designing ILs with desired properties from the viewpoint of applications.
通过密度泛函理论(DFT)、二维红外相关光谱(2D IR COS)和脉冲梯度自旋回波 NMR(PGSE NMR)研究了两性离子液体(ZIL)由于与水分子的氢键相互作用而导致的几何和构象变化。模拟结果表明,在优化状态下的分子结构强烈受到水分子与磺酸盐基团或 3-(1-甲基-3-咪唑基)丙磺酸盐(1)和 3-(1-甲基-1-吡咯烷基)丙磺酸盐(2)的咪唑𬭩和吡咯烷𬭩环的氢键的影响。浓度依赖性的 2D IR COS 揭示了两个 ZIL-H(2)O 体系的动力学构象变化归因于分子间相互作用,以及磺酸盐基团和咪唑𬭩或吡咯烷𬭩环与水分子的相互作用。(1)H 自扩散系数的剧烈变化阐明了质子传导途径的形成,该途径由 ZIL 网络组成。在 ZIL 域中,质子通过形成、断裂和重建 ZIL 与 H(2)O 之间的键,通过 Grotthuss 型机制传递,从而达到能量有利的状态。本文的模拟和实验研究从学术角度提供了对与水相互作用的理解,并从应用角度提供了设计具有所需性质的 IL 的视角。