Sheridan Quintin R, Schneider William F, Maginn Edward J
Department of Chemical and Biomolecular Engineering, The University of Notre Dame , Notre Dame, Indiana 46556 United States.
J Phys Chem B. 2016 Dec 15;120(49):12679-12686. doi: 10.1021/acs.jpcb.6b10631. Epub 2016 Dec 1.
Molecular dynamics simulations were used to compare water solubilities and the effects of water on the structure and dynamics of ionic liquids (ILs) composed of phosphonium cations paired with azolide and phenolate anions. The addition of water decreases ordering of the ions compared to the dry ILs with the exception of anion-anion ordering in the phenolate IL. The result is that the dynamics of the azolide ionic liquids increase significantly upon addition of water, whereas the phenolate IL dynamics show little change. The relative water solubilities were compared through calculation of Henry's law constants. Water is much more soluble in the phenolate IL due to strong hydrogen bonding interactions between water and the phenolate oxygen atom. Anions can therefore be selected to control IL-water hydrogen bonding for optimal performance in applications such as CO separation.
分子动力学模拟用于比较水溶性以及水对由鏻阳离子与唑化物和酚盐阴离子配对组成的离子液体(ILs)的结构和动力学的影响。与干燥的离子液体相比,水的加入降低了离子的有序性,但酚盐离子液体中的阴离子-阴离子有序性除外。结果是,加入水后唑化物离子液体的动力学显著增加,而酚盐离子液体的动力学变化很小。通过计算亨利定律常数比较了相对水溶性。由于水与酚盐氧原子之间存在强氢键相互作用,水在酚盐离子液体中的溶解度要大得多。因此,可以选择阴离子来控制离子液体-水的氢键,以在诸如CO分离等应用中实现最佳性能。